51 |
Identification of Quantitative Trait Loci for Resistance to Tan Spot in Durum WheatGalagedara, Nelomie Nayanathara January 2018 (has links)
Tan spot, caused by Pyrenophora tritici-repentis (Ptr), is a major foliar disease on wheat. The pathosystem involves three pairs of necrotrophic effector (NE) and host sensitivity (S) gene interactions, namely Ptr ToxA-Tsn1, Ptr ToxB-Tsc2 and Ptr ToxC-Tsc1. Additionally, genetic factors conferring race-nonspecific resistance have been identified. The objectives of this study were to map tan spot resistance QTL and investigate the role of NE-S interactions in disease in durum using association and bi-parental mapping. Evaluation of a worldwide collection of durum accessions allowed identifying highly resistant nineteen lines to multiple Ptr races. Association mapping revealed genomic regions on chromosomes 1A, 2B and 3B significantly associated with resistance to tan spot, which likely correspond to Tsc1, Tsc2 and racenonspecific resistance. Using a bi-parental population derived from Ben and PI 41025, we found that ToxA-Tsn1 interaction plays no significant role in disease, instead a major race-nonspecific QTL on chromosome 5A was identified.
|
52 |
Mapping and restructuring of an Ae. kotschyi derived translocation segment in common wheatHeyns, I.C. 12 1900 (has links)
Thesis (PhD (Genetics))--University of Stellenbosch, 2010. / Includes bibliography. / ENGLISH ABSTRACT: The wild relatives are an important source of new genes for the genetic improvement
of wheat. At Stellenbosch University the leaf and stripe rust resistance genes Lr54 and
Yr37 were transferred from Aegilops kotschyi to chromosome 2DL of wheat. In an
attempt to reduce the size of the whole-arm translocation on which the resistance
genes occur, homoeologous pairing was induced between the wheat and
corresponding Ae. kotschyi chromatin. The purpose of this study was to: (i) Evaluate
the testcross progeny thus obtained; identify translocation recombinants that retained
Lr54/Yr37 and to characterize these using molecular markers (ii) Test for the presence
of genes for photoperiod insensitivity (Ppd) and reduced height (Rht) believed to be
associated with the translocation (iii) Develop a SCAR marker for the most useful
recombinant that could be recovered.
Ten putative translocation recombinants were identified following the
screening of 159 hemizygous testcross F1 plants with three microsatellite markers
specific for chromosome arm 2DL. The recombinants were then characterized with
another five microsatellite markers. Using the eight microsatellite markers the
recombinants were ordered in two size categories with recombinant #74 being the
shortest and having retained only proximal alien chromatin on 2DL. In addition to
microsatellite markers, RAPDs, RGAs, AFLPs and SCAR markers were genetically
mapped to the translocation and further resolved the recombinants into three size
categories. In an attempt to find suitable markers linked to the shortest recombinant
(#74) a polymorphic 410 bp AFLP fragment produced with the enzyme/selective
nucleotide combination EcoRI – AAC/MseI – CAT, was converted into a dominant
SCAR marker. In addition three microsatellite markers that mapped to recombinant
#74 provided a useful recessive molecular marker system to detect Lr54/Yr37.
Evaluation of the 10 recombinants with four 2DS-specific microsatellite markers
revealed a large deletion of this chromosome arm in recombinant #74. This deletion
may affect plant phenotypic characteristics and a strategy to replace the deleted region
in recombinant #74 is proposed. To test for the presence of a gene for photoperiod insensitivity on the translocation,
translocation-carriers plus controls were subjected to long and short day treatments,
and the effect on time to flowering was studied. However, no evidence was found for
the presence of such a gene. A height experiment to test for the presence of an Rht
gene on the translocation confirmed its presence. This gene (designated H) appeared
to be different from Rht8 on chromosome 2DS and was mapped on 2DL. While H
does not occur in a chromosome region that corresponds with the location of Rht8, it
does not rule out the possibility that they could be orthologous loci. Plant height data
obtained for recombinant #74 suggested that H was lost through recombination in this
particular recombinant. A greenhouse experiment suggested that the full-length
translocation increased 100 kernel mass but had a detrimental effect on overall plant
yield. Since a much shorter recombinant (#74) has been obtained, this will also have
to be evaluated for associated effects. Such an evaluation needs to be done under
commercial growing conditions and should involve the comparison of near-isogenic
bulks with and without recombinant chromosome #74.
The stripe rust resistance gene (Yr37) was mapped by screening hemizygous
TF2 progeny of the 10 recombinants with Puccinia striiformis pathotype 6E22A+.
Recombinant #74 retained both Lr54 and Yr37 and the two genes therefore occur
towards the centromere. / AFRIKAANSE OPSOMMING: Wilde verwante spesies is ‘n belangrike bron van nuwe gene vir die genetiese
verbetering van koring. By die Universiteit van Stellenbosch is die blaar-roes en
streep-roes weerstandsgene Lr54 en Yr37 vanaf Aegilops kotschyi na chromosoom
2DL van koring oorgedra. ‘n Poging is vervolgens aangewend om die vol-armtranslokasie
waarop die weerstandsgene voorkom te verklein deur homoeoloë paring
tussen die koring en ooreenstemmende Ae. kotschyi chromatien te induseer. Die
doelstelling van hierdie studie was daarom as volg: (a) Evaluering van die verkreë
toetskruis-nageslag asook die identifisering en karakterisering van translokasie
rekombinante wat Lr54/Yr37 behou het. (b) Toetsing vir fotoperiode onsensitiwiteits-
(Ppd) en verkorte plant-hoogte (Rht) gene wat moontlik op die translokasie kon
voorkom. (c) Die ontwikkeling van ‘n volgorde-spesifieke polimerase kettingreaksie
(PKR) vir die mees bruikbare rekombinant.
Tien translokasie rekombinante is geïdentifiseer nadat 159 hemisigotiese
toetskruis F1-plante met drie mikrosatelliet-merkers, spesifiek vir chromosoom-arm
2DL, ge-evalueer is. Die rekombinante is hierna met vyf verdere mikrosatellietmerkers
getoets. Die data van die agt mikrosatelliet-loci het die rekombinante in twee
grootte-kategorieë geplaas waarvan rekombinant #74 die kortste was met slegs die
proksimale gedeelte van 2DL wat uit vreemde chromatien bestaan. Behalwe
mikrosatellite-merkers is toevallig-geamplifiseerde polimorfiese DNS (RAPD),
weerstandsgeen-analoog (RGA), geamplifiseerde volgordelengte polimorfisme
(AFLP) en volgorde-gekarakteriseerde geamplifiseerde-streke (SCAR) merkers ook
geneties op die translokasie gekarteer. Data van die addisionele merkers het dit
moontlik gemaak om die rekombinante in drie grootte-kategorieë te skei. Pogings om
‘n merker vir die kortse rekombinant (#74) te vind, het gelei tot die omskakeling van
‘n 410 bp polimorfiese AFLP-fragment (geproduseer met die ensiem/selektiewenukleotied
kombinasie EcoRI - AAC/MseI - CAT), na ‘n dominante, volgordespesifieke
PKR-merker. Hierbenewens kan drie mikrosatelliet-merkers wat op
rekombinant #74 karteer as resessiewe merkers vir die identifisering van Lr54/Yr37
gebruik word. Die evaluering van die 10 rekombinante met vier chromosoom 2DSspesifieke
mikrosatelliet-merkers het ‘n groot delesie van chromosoom-arm 2DS in rekombinant #74 uitgewys. Die delesie mag plant fenotipiese kenmerke beïnvloed en
daarom is ‘n strategie vir die vervanging daarvan in rekombinant #74 voorgestel.
Ten einde te toets of ‘n geen vir fotoperiode-onsensitiwiteit op die translokaie
voorkom is translokasie-draers en kontroles aan lang- en kortdag-behandelings
onderwerp en is die effek hiervan op dae-tot-blom gemeet. Geen bewyse vir so ‘n
geen kon gevind word nie. ‘n Hoogte-eksperiment om te toets vir die teenwoordigheid
van ‘n Rht-geen op die translokasie, het bevestig dat so ‘n geen wel voorkom. Die
geen (voorgestelde simbool H) is gekarteer op 2DL en verskil oënskynlik van Rht8 op
chromosoom 2DS. Die verskillende chromosoom-ligging van H en Rht8 skakel egter
nie die moontlikheid dat hulle ortoloë loci mag wees uit nie. Plant-hoogte data vir
rekombinant #74 het daarop gedui dat H nie meer in hierdie rekombinant voorkom
nie. Data van ‘n glashuis-eksperiment het daarop gedui dat die vollengte-translokasie
100-korrel-massa verhoog maar dat dit plant-opbrengs verlaag. Aangesien ‘n
aansienlike korter rekombinant (#74) verkry is, sal dit ook vir gekoppelde effekte
getoets moet word. So ‘n evaluering moet egter onder kommersiële toestande gedoen
word met gebruik van naby isogeniese-lyne met en sonder rekombinante chromosoom
#74.
Die streep-roes weerstandgeen (Yr37) is gekarteer deur hemisigotiese TF2-
nageslag van die 10 rekombinante te toets vir weerstand teen Puccinia striiformis
patotipe 6E22A+. Rekombinant #74 het beide Lr54 en Yr37 behou en die twee gene
karteer dus naby die sentromeer.
|
53 |
Transfer of genetic resistance to the Russian wheat aphid from rye to wheatHorn, Marizanne 03 1900 (has links)
Thesis (MSc.) -- Stellenbosch University, 1997. / ENGLISH ABSTRACT: An octoploid triticale was derived from the F1 of a Russian wheat aphid
resistant rye, 'Turkey 77', and 'Chinese Spring' wheat. The alloploid was
crossed (a) to common wheat, and (b) to the 'Imperial' rye to 'Chinese Spring'
disomic addition lines. F2 progeny from these crosses were tested for
Russian wheat aphid resistance and C-banded. Resistance was found to be
associated with chromosome arm 1RS of the 'Turkey 77' rye genome. This
initial work was done by MARAIS (1991) who made a RWA resistant,
monotelosomic 1RS ('Turkey 77') addition plant available for the study. The
F3 progeny of this monotelosomic addition plant was used to confirm the
RWA resistance on chromosome 1RS. The monotelosomic addition plant
was then crossed with the wheat cultivar 'Gamtoos', which has the 1BL.1 RS
'Veery' translocation. Unlike the 1RS segment in 'Gamtoos', the 'Turkey 77'-
derived 1RS telosome did not express the rust resistance genes 5r31 and
Lr26 which could then be used as markers. From the F1 a monotelosomic
1RS addition plant that was also heterozygous for the 1BL.1 RS translocation,
was selected and testcrossed with an aphid susceptible common wheat, 'Inia
66'. Meiotic pairing between the .rye arms resulted in the recovery of five
euploid, Russian wheat aphid resistant plants out of a progeny of 99
euploids. One recombinant also retained 5r31 and Lr26 and was allowed to
self pollinate. With the aid of SOS-PAGE profiles, Russian wheat aphid
resistant 1BL.1 RS translocation homozygotes were identified and it was
possible to confirm that the Russian wheat aphid resistance gene was in fact
transferred to the 1BL.1RS ('Veery') translocation.
Two attempts were made to map the Russiar, wheat aphid locus or loci.
(1) Telosomic mapping was attempted. For this purpose a plant with 2n =
40 + 1BL.1 RS + 1RS was obtained, and testcrossed with a Russian wheat
aphid susceptible wheat. (2) A disomic, recombined 1BL.1 RS translocation
line with Russian wheat aphid resistance but lacking the Lr26 and Sr31 alleles was crossed with 'Gamtoos' and the F1 testcrossed. The testcross in
both strategies were done with 'Chinese Spring'. In the first experiment the
Sr31 locus was located 10.42 map units from the Lr26 locus. The rust
resistance data implied that the genetic distance estimates may be unreliable
and therefore the laborious Russian wheat aphid resistance tests were not
done. In the second experiment a Russian wheat aphid resistance gene was
located 14.5 map units from the Lr26 locus. In the latter cross nonmendel
ian segregation of the Russian wheat aphid resistance evidently
occurred which implied that the estimated map distance may be inaccurate.
It was also not possible to determine the number of genes involved from the
data. / Digitized at 300 dpi Colour & b/W PDF format (OCR), using ,KODAK i 1220 PLUS scanner. Digitised, Ricardo Davids on request from ILL 25 April 2013 / AFRIKAANSE OPSOMMING: 'n Oktaplo"lede triticale is gemaak vanaf die F1 van 'n kruising tussen 'n
Russiese koringluis-weerstandbiedende rog, 'Turkey 77', en die
koringkultivar 'Chinese Spring'. Die alloplo"led is gekruis met gewone
broodkoring en met 'Imperial' rog/'Chinese Spring' disomiese addissielyne.
Die F2 nageslag vanaf hierdie kruisings is getoets vir Russiese koringluisweerstandbiedendheid
en C-bande is ook gedoen. Weerstand is gevind wat
geassosieer is met die 1RS chromosoomarm van 'Turkey 77'. Hierdie
oorspronklike werk is deur MARAIS (1991) gedoen en uit sy materiaal is 'n
monotelosomiese 1RS ('Turkey 77') addissieplant beskikbaar gestel vir die
huidige studie. Die F3 nageslag van hierdie monotelosomiese addissieplant
is gebruik om die weerstand teen die Russiese koringluis op chromosoom
1RS te bevestig. Die monotelosomiese addissieplant is ook gekruis met die
koringkultivar 'Gamtoos' wat die 1BL.1 RS-translokasie dra. Hoewel die 1RS
segment van 'Gamtoos' die roesweerstandsgene, Sr31 en Lr26 uitdruk, is dit
nie die geval met die 'Turkey 77' 1RS telosoom nie. Hierdie gene kon dus as
merkergene gebruik word. Vanuit die F1 is 'n monotelosomiese 1RS
addissieplant geselekteer wat ook heterosigoties was vir die 1BL.1 RStranslokasie.
Hierdie plant is getoetskruis met 'n luisvatbare gewone
broodkoring, 'Inia 66'. Meiotiese paring tussen die rogarms het daartoe gelei
dat vyf euplo"lede Russiese koringluis-weerstandbiedende nageslag uit 99
euplo"lede nageslag geselekteer kon word. Een rekombinant het ook Sr31
en Lr26 behou en is toegelaat om self te bestuif. Met behulp van SDSPAGE
profiele is Russiese koringluis-weerstandbiedende 1BL.1 RStranslokasie
homosigote ge"ldentifiseer en kon bevestig word dat die
weerstandsgeen vir die Russiese koringluis oorgedra is na die 1BL.1 RS
('Veery') -translokasie.
Twee strategies is gevolg om die Russiese koringluislokus of -loci te karteer:
(1) 'n Telosomiese analise is gedoen. 'n Plant met 2n = 40 + 1BL.1 RS +
1RS is verkry en met 'n luisvatbare koring bestuif. (2) 'n Gerekombineerde, disomiese plant met Russiese koringluis-weerstandbiedendheid maar sonder
die Lr26 en Sr31 allele is gekruis met 'Gamtoos' en die F1 getoetskruis. Die
toetskruisouer in beide die strategiee was 'Chinese Spring'. In die eerste
eksperiment is die Sr31-lokus 10.42 kaarteenhede vanaf die Lr26-lokus
gelokaliseer. Die raesdata het ge"impliseer dat onbetraubare genetiese
kaarteenhede geskat sou word en daarom is die omslagtige Russiese
koringluis weerstandsbepalings nie gedoen nie. In die tweede eksperiment
is die Russiese koringluis-weerstandsgeen op 14.5 kaarteenhede vanaf die
Lr26-lokus gelokaliseer. Nie-Mendeliese segregasie van die Russiese
koringluis-weerstand in hierdie karteringseksperiment het ge'impliseer dat die
berekende kaartafstand onakkuraat mag wees. Dit was ook nie moontlik om
op grand van die data die aantal gene betrakke af te lei nie.
|
54 |
Lignin as a mechanism of field resistance to Phytophthora rot in soybeansCurry, Joseph Timothy. January 1984 (has links)
Call number: LD2668 .T4 1984 C87 / Master of Science
|
55 |
A comparison of techniques for screening for resistance to the chinch bug, Blissus leucopterus leucopterus (Say), in sorghumMeehan, Mitchell Elwin. January 1985 (has links)
Call number: LD2668 .T4 1985 M43 / Master of Science
|
56 |
Breeding for Smut Resistance in Arizona-Grown WheatBryan, W. E. 15 March 1937 (has links)
This item was digitized as part of the Million Books Project led by Carnegie Mellon University and supported by grants from the National Science Foundation (NSF). Cornell University coordinated the participation of land-grant and agricultural libraries in providing historical agricultural information for the digitization project; the University of Arizona Libraries, the College of Agriculture and Life Sciences, and the Office of Arid Lands Studies collaborated in the selection and provision of material for the digitization project.
|
57 |
The development and characterisation of grapevine virus-based expression vectorsDu Preez, Jacques 03 1900 (has links)
Thesis (PhD (Genetics))--University of Stellenbosch, 2010. / ENGLISH ABSTRACT: Grapevine (Vitis vinifera L.) is a very important agricultural commodity that needs to be
protected. To achieve this several in vivo tools are needed for the study of this crop and the
pathogens that infect it. Recently the grapevine genome has been sequenced and the next
important step will be gene annotation and function using these in vivo tools. In this study the
use of Grapevine virus A (GVA), genus Vitivirus, family Flexiviridae, as transient expression
and VIGS vector for heterologous protein expression and functional genomics in Nicotiana
benthamiana and V. vinifera were evaluated. Full-length genomic sequences of three South
African variants of the virus (GTR1-1, GTG11-1 and GTR1-2) were generated and used in a
molecular sequence comparison study. Results confirmed the separation of GVA variants into
three groups, with group III (mild variants) being the most distantly related. It showed the
high molecular heterogeneity of the virus and that ORF 2 was the most diverse. The GVA
variants GTG11-1, GTR1-2 and GTR1-1 were placed in molecular groups I, II and III
respectively. A collaboration study investigating the molecular divergence of GVA variants
linked to Shiraz disease (SD), described two interesting GVA variants of group II, namely
GTR1-2 and P163-M5 (Goszczynski et al., 2008). The group II variants were found to be
closely linked to the expression of SD. GTR1-2 was isolated from a susceptible grapevine
plant that never showed SD symptoms (Goszczynski 2007). The P163-M5 variant that
resulted in exceedingly severe symptoms in N. benthamiana and is that used as SD positive
control by the grapevine industry, was found to contain a 119 nt insert within the native
ORF2. Comparative analysis performed on the complete nt and aa sequences of group II GVA
variants suggested that the components in the GVA genome that cause pathogenicity in V.
vinifera are more complex (or different) to those that cause pathogenicity in N. benthamiana.
The three South African variants (GTR1-1, GTG11-1 and GTR1-2) were assembled into fulllength
cDNA clones under control of CaMV 35S promoters. After several strategies were
attempted, including a population cloning strategy for GTR1-2, none of the clones generated
were able to replicate in N. benthamiana plants. A single amino acid substitution at position
13 (Tyr/Y Cys/C) in ORF 5 of the GTR1-2 cDNA clone was shown to abolish or reduce
replication of the virus to below a detectable level. Two infectious clones of Israeli variants of
GVA (T7-GVA-GR5 and T7-GVA118, obtained from M. Mawassi) were brought under
control of a CaMV 35S promoter (35S-GVA-GR5 and 35S-GVA118). Both clones were
infectious, able to replicate, move systemically and induce typical GVA symptoms after
agroinfiltration in N. benthamiana. These Israeli clones served as backbone for further experiments in characterisation of transient expression and VIGS vectors. The use of GVA as
gene insertion vector (35S-GVA118) and gene exchange vector (35S-GVA-GR5-
ORF2+sgMP) in N. benthamiana and V. vinifera was compared. The gene insertion vector,
35S-GVA118 was based on the full-length GVA genome. The gene exchange vector, 35SGVA-
GR5- ORF2+sgMP, was constructed in this study by elimination of ORF 2 and
insertion of a sgMP and unique restriction sites to facilitate transgene insertion. In N.
benthamiana both vectors showed similar GUS expression levels and photobleaching
symptoms upon virus-induced NbPDS silencing. In V. vinifera limited GUS expression levels
and VIGS photobleaching symptoms were observed for the gene insertion vector, 35SGVA118.
No GUS expression was observed for the gene exchange vector 35S-GVA-GR5-
ORF2+sgMP in this host. As for silencing, one plant, agroinfiltrated with 35S-GVA-GR5-
ORF2-VvPDS+sgMP, developed photobleaching symptoms in 3 systemic infected leaves
after 4 months. This study showed that GVA can be used as gene insertion and gene exchange
vector for expression and VIGS in N. benthamiana, but in grapevine its use is limited to
expression and silencing of genes in the phloem tissue. It is also the first report that ORF 2 of
GVA is not needed for long distance movement in grapevine.
To investigate the possible role of the P163-M5 119 nt insertion and the GVA ORF 2 (of
unknown function), in expression of symptoms in plants, ORF 2 of a 35S-GVA-GR5 cDNA
clone was removed and subsequently substituted by the corresponding ORFs of four South
African GVA variants. Upon agro-infiltration into N. benthamiana leaves, all chimaeric GVA
constructs were able to move systemically through the plant. At this stage no correlation
could be found between severity of symptoms, the presence of the P163-M5 insert and the
specific GVA ORF 2 present in the chimaeras, indicating that other factors in the viral
genome or the host plant probably play a crucial role.
This study contributed to the pool of available in vivo tools for study and improvement of the
valuable grapevine crop. It also opened several exciting research avenues to pursue in the near
future. / AFRIKAANSE OPSOMMING: Wingerd (Vitis vinifera L.) is ‘n baie belangrike landboukundige gewas wat beskerm moet
word. Om die rede word verskeie in vivo gereedskap vir die bestudering van die
wingerdplant, en die patogene wat dit infekteer benodig. Die wingerd genoom se volgorde is
bepaal en dus is die volgende logiese stap om die gene te annoteer en funksie daaraan toe te
skryf. In hierdie studie is die gebruik van Grapevine virus A (GVA), genus Vitivirus, familie
Flexiviridae, as tydelike uitdrukking- en virus-geinduseerde geenuitdowingsvektor vir
heteroloë proteïen uitdrukking en funksionele genoomstudies in Nicotiana benthamiana en V.
Vinifera getoets. Vollengte genoomvolgordes van drie Suid-Afrikaanse variante van die virus
(GTR1-1, GTG11-1 en GTR1-2) is gegenereer en in ‘n molekulêre volgorde vergelyking
studie gebruik. Resultate het die verdeling van GVA variante in drie groepe, waar groep III
die verste verwant is, bevestig. Dit het ook gewys dat die virus ‘n baie hoë molekulêre
heterogeniteit het en dat oopleesraam 2 (ORF 2) die mees divers is. ‘n Samewerking studie
waar die molekulêre diversiteit van GVA variante, gekoppel aan Shiraz siekte (SD),
ondersoek is, is twee interessante variante van groep II beskryf, naamlik GTR1-2 en P163-M5
(Goszczynski et al., 2008). Groep II variante is vooraf gevind om nou verwant te wees aan die
ontwikkeling van SD in wingerd. Die GTR1-2 variant is uit ’n vatbare wingerd plant, wat
nooit SD-simptome vertoon het nie, geïsoleer (Goszczynski et al., 2007). In die ORF 2 van
die P163-M5 variant, wat simptome van die ergste graad in N. benthamiana geïnduseer het, en
ook deur die industrie as betroubare SD-positiewe kontrole gebruik word, is ’n 119 nt
invoeging gevind. Die vergelykende analise wat uitgevoer is, het daarop gedui dat die
determinante van patogenisiteit in die GVA genoom moontlik meer kompleks kan wees in V.
vinifera as in N. benthamiana. Die drie Suid-Afrikaanse variante (GTR1-1, GTG11-1 en
GTR1-2) is in afsonderlike vollengte cDNA klone, onder beheer van CaMV 35S promotors,
aanmekaargesit. Nadat verskeie kloneringstrategieë, insluitend ’n populasie kloneringstrategie
vir die GTR1-2 kloon, gebruik is, het geen een van die cDNA klone die vermoë besit om in
N. benthamiana te repliseer nie. ’n Enkele aminosuur substitusie in posisie 13
(Tyr/Y Cys/C) in ORF 5 van die GTR1-2 kloon, het die replisering van die virus tot laer as
’n opspoorbare vlak verlaag. Twee infektiewe klone van Israeliese GVA variante (T7-GVAGR5
en T7-GVA118, verkry van M. Mawassi) is onder beheer van ‘n CaMV 35S promotor
geplaas (35S-GVA-GR5 and 35S-GVA118). Beide klone het na agro-infiltrasie in N.
benthamiana plante gerepliseer, sistemies beweeg en tipiese GVA simptome geinduseer.
Hierdie twee klone het as raamwerk gedien vir verdere eksperimente in karakterisering van tydelike uitdrukkings- en VIGS vektore. Die gebruik van GVA as geen-insvoegingsvektor
(35S-GVA118) en geen-vervangingsvektor (35S-GVA-GR5- ORF2+sgMP) is in N.
benthamiana en V. vinifera vergelyk. Die geen-invoegingsvektor 35S-GVA118, was op die
vollengte GVA genoom gebasseer. Die geen-vervangingsvektor 35S-GVA-GR5-
ORF2+sgMP, was in hierdie studie gekonstrueer. Dit is gemaak eerstens deur eliminasie van
ORF 2 in die 35S-GVA-GR5 kloon, en tweedens deur die invoeging van ’n subgenomiese
promotor van die beweginsproteïen (sgMP) en unieke beperkings-ensiemsetels om klonering
van transgene te fasiliteer. Beide vektore het in N. benthamiana vergelykbare GUS
uitdrukkingsvlakke en fotobleikende simptome getoon na virus-geinduseerde NbPDS
uitdowing. In V. Vinifera is beperkte GUS uitdrukkingsvlakke en VIGS fotobleikende
simptome opgemerk met die geen-invoegingsvektor, 35S-GVA118. Geen GUS uitdrukking is
in hierdie gasheerplant met die geen-vervangingsvektor opgemerk nie. Slegs een wingerdplant
het fotobleikende simptome, na 4 maande in 3 sistemies geïnfekteerde blare gewys, na agroinfiltrasie
van die 35S-GVA-GR5- ORF2-VvPDS+sgMP konstruk. Hierdie studie het
bevestig dat GVA as geen-invoeging en geen-vervangingsvektor, vir heteroloë proteïenuitdrukking
en VIGS, in N. benthamiana gebruik kan word, maar dit blyk of die gebruik
daarvan in wingerd meer tot die floeëm weefsel beperk is. Hierdie studie wys vir die eerste
keer dat ORF 2 nie nodig is vir langafstand beweging van die virus in wingerd nie.
Om die moontlike rol van die P163-M5 119 nt invoeging en die GVA ORF 2 (met onbekende
funksie), in die uitdrukking van simptome in plante te ondersoek, is ORF 2 van die 35SGVA-
GR5 cDNA kloon verwyder en daaropvolgens vervang met die ooreenstemmende
ORFs van vier Suid-Afrikaanse GVA variante. Na agro-infiltrasie in N. benthamiana blare,
het al die chimeras die vermoë gehad om te repliseer, sistemies te beweeg en simptome te
induseer. Geen korrelasie kon gevind word tussen die graad van simptome, die
teenwoordigheid van die P163-M5 insersie en die spesifieke GVA ORF 2 teenwoordig in die
chimeras nie, wat dus daarop dui dat ander faktore in die virusgenoom of die gasheerplant `n
moontlike belangrike rol kan speel.
Hierdie studie het bygedrae tot die beskikbare poel van in vivo gereedskap vir die bestudering
en verbetering van die kosbare wingerdgewas. Dit het ook talle interessante
navorsingsgeleenthede oopgemaak om in die nabye toekoms te betree.
|
58 |
Genetic mapping of gray leaf spot resistance genes in maizeLehmensiek, Anke 12 1900 (has links)
Thesis (PhD)--Stellenbosch University, 2000. / ENGLISH ABSTRACT: Gray leaf spot (GLS) of maize, caused by the fungus Cercospora zeae-maydis,
can reduce grain yields by up to 60% and it is now recognized as one of the most
significant yield-limiting diseases of maize in many parts of the world. The most
sustainable and long-term management strategy for GLS will rely heavily on the
development of high-yielding, locally adapted GLS resistant hybrids.
Molecular markers could be useful to plant breeders to indirectly select for genes
affecting GLS resistance and to identify resistance genes without inoculation and
at an early stage of plant development. Only two studies in the USA have
examined quantitative trait loci (QTL) association with GLS resistance.
The aim of this study was to map GLS resistance genes in a resistant Seed Co
LTD, Zimbabwean inbred line. Molecular markers linked to the GLS resistance
QTL were identified by using the amplified fragment length polymorphism (AFLP)
technique together with bulked segregant analysis. Eleven polymorphic AFLP
fragments were identified and converted to sequence-specific PCR (polymerase
chain reaction) markers. Eight of the 11 converted AFLP markers were added to
the maize marker database of the University of Stellenbosch.
Five of the 8 converted AFLP markers were polymorphic between the resistant
and the susceptible parent. They were amplified on the DNA of 230 plants of a
segregating F2 population and linkage analysis was performed with
MAPMAKER/EXP. Two linkage groups consisting of two markers each, with a
linkage distance of 10.4 cM (LOD 22.83) and 8.2 cM (LOD 55.41) between the
two markers, were identified. QTL mapping with MAPMAKER/QTL confirmed the
presence of QTL in both linkage groups. Two publicly available recombinant inbred families (Burr et a/., 1988) were used
to localize the converted AFLP markers on the genetic map of maize. The QTL,
which were identified with the AFLP markers, were mapped to chromosomes 1
and 5. Another AFLP marker was mapped to chromosome 2 and a further to
chromosome 3.
To obtain more precise localizations of the QTL on chromosomes 1 and 5,
sequence-tagged site markers and microsatellite markers were used. The
markers were amplified on the DNA of the 230 plants of the F2 population and
linkage analysis was performed with MAPMAKER/EXP. The order of the markers
was in agreement with the UMC map of the Maize Genome Database. Interval
mapping using MAPMAKERlQTL and composite interval mapping using QTL
Cartographer were performed. The QTL on chromosome 1 had a LOD score of
21 and was localized in bin 1.05/06. A variance of 37% was explained by the
QTL. Two peaks were visible for the QTL on chromosome 5, one was localized in
bin 5.03/04 and the other in bin 5.05/06. Both peaks had a LOD score of 5 and
11% of the variance was explained by the QTL.
To test the consistency of the detected QTL, the markers flanking each QTL
were amplified on selected plants of two F2 populations planted in consecutive
years and regression analysis was performed. Both the QTL on chromosome 1
and the QTL on chromosome 5 were detected in these populations. Furthermore,
the presence of a QTL on chromosome 3 was confirmed with these populations.
A variance of 8 -10% was explained by the QTL on chromosome 3.
In this study, a major GLS resistance QTL was thus mapped on chromosomes 1
and two minor GLS resistance QTL were mapped on chromosomes 3 and 5
using a resistant Seed Co LTD, Zimbabwean inbred line. Markers were identified
which could be used in a marker-assisted selection program to select for the GLS
resistance QTL. / AFRIKAANSE OPSOMMING: Grys blaarvlek (GBV) van mielies, veroorsaak deur die swam Cercospora zeaemaydis,
kan graanopbrengs met tot 60% verlaag en word beskou as een van die
vernaamste opbrengs-beperkende siektes wêreldwyd. Die toepaslikste
langtermyn stragtegie vir GBV beheer sal wees om plaaslike mieliebasters met
hoë opbrengs en GBV weerstand te ontwikkel.
Molekulêre merkers kan nuttig deur plantetelers gebruik word om
weerstandsgene te selekteer. Seleksie is moontlik in die afwesigheid van
inokolum en op 'n vroeë stadium van plant ontwikkeling. Slegs twee vorige
studies (in die VSA) het kwantitatiewe-kenmerk-Iokusse (KKL), vir GBVweerstand
ondersoek.
Die doel van hierdie studie was om die GBV weerstandsgene in 'n
weerstandbiedende ingeteelde lyn (Seed Co BPK, Zimbabwe) te karteer.
Molekulêre merkers gekoppel aan die GBV weerstands KKL is geïdentifiseer
deur gebruik te maak van die geamplifiseerde-fragmentlengte-polimorfisme-
(AFLP-) tegniek en gebulkte-segregaat-analise. Elf polimorfiese merkers is
geïdentifiseer en omgeskakel na volgorde-spesifieke PKR (polimerase
kettingreaksie) merkers. Agt van die elf omgeskakelde AFLP-merkers is by die
mieliemerker databasis van die Universiteit van Stellenbosch gevoeg.
Vyf van die 8 omgeskakelde AFLP-merkers was polimorfies tussen die bestande
en vatbare ouers. Hulle is geamplifiseer op die DNA van 230 plante van 'n
segregerende F2-populasie en is gebruik in 'n koppelingstudie met
MAPMAKER/EXP. Twee koppelingsgroepe, elk bestaande uit twee merkers, met
onderskeidelik koppelingsafstande van 10.4 eM (LOD 22.83) en 8.2 eM (LOD
55.41) tussen die merkers, is geïdentifiseer. KKL-kartering het getoon dat KKL in
albei koppelingsgroepe aanwesig is. Twee kommersieël beskikbare, rekombinant-ingeteelde families (Burr et aI.,
1988) is gebruik om die omgeskakelde AFLP-merkers op die mielie genetiese
kaart te plaas. Die KKL wat met die AFLP-merkers geïdentifiseer is, is gekarteer
op chromosome 1 en 5. 'n Verdere AFLP-merker is op chromosoom 2 gekarteer
en 'n ander op chromosoom 3.
Ten einde die KKL op chromosome 1 en 5 meer akkuraat te karteer, is volgordege-
etikeerde en mikrosatelliet merkers gebruik. Die merkers is geamplifiseer op
die DNA van die 230 plante van die F2-populasie en koppelings-analises is
uitgevoer. Die volgorde van die merkers was dieselfde as die van die UMC-kaart
in die Mielie Genoom Databasis. Interval kartering met MAPMAKER/QTL en
komposiet interval kartering met QTL Cartographer is uitgevoer. Die KKL op
chromosoom 1 het 'n LOD-telling van 21 gehad en is in bin 1.05/06 geplaas. Die
KKL was verantwoordelik vir 37% van die variansie. Twee pieke was
onderskeibaar vir die KKL op chromosoom 5, een in bin 5.03/04 geleë en die
ander in bin 5.05/06. Elke piek het 'n LOD-telling van 5 gehad en die twee KKL
was verantwoordelik vir 11% van die variansie.
Om die herhaalbaarheid van die effek van die KKL te toets is die merkers naaste
aan elke KKL geamplifiseer op geselekteerde plante van twee F2-populasies wat
in opeenvolgende jare geplant is. Regressie analise is op die data gedoen. Beide
die KKL op chromosoom 1 en die KKL op chromosoom 5 kon in hierdie
populasies geïdentifiseer word. Verder kon die aanwesigheid van 'n verdere KKL
op chromosoom 3 in hierdie populasies bevestig word. Laasgenoemde KKL was
verantwoordelik vir 8-10% van die totale variansie.
In hierdie studie is daar dus 'n hoof GBV-weerstands KKL gekarteer op
chromosoom 1 en twee kleiner GBV-weerstands KKL gekarteer op chromosome
3 en 5. Merkers is geïdentifiseer wat moontlik in merker-gebaseerdetelingsprogramme
gebruik kan word om plante te selekteer wat die GBVweerstands
KKL het.
|
59 |
Tagging and mapping of prominent structural genes on chromosome arm 7DL of common wheatGroenewald, Johannes Zacharias 12 1900 (has links)
Thesis (PhD (Agric)) -- Stellenbosch University, 2001. / ENGLISH ABSTRACT: Chromosome arm 7DL of common wheat carries genes for agronomically important traits such
as leaf rust, stem rust, Russian wheat aphid and eye spot resistance. Some of these genes occur
on introgressed foreign chromatin, which restricts their utility in breeding. The 7DL genetic
maps are poorly resolved, which seriously hampers attempts to manipulate the genes and
introgressed regions in breeding. This dissertation represents an attempt to improve our
knowledge of the relative map positions of three resistance genes that have significant potential
for use in local breeding programmes.
The leaf rust resistance gene, Lr19, is located on a Thinopyrum ponticum-derived translocation
which occupies a large part of the terminal end of 7DL. The translocation also carries genes for
less favourable traits such as yellow flour colour. Attempts have been made to reduce the size of
the translocation through allosyndetic pairing induction; the primary aims being to remove
deleterious genes and to minimise the amount of foreign chromatin associated with Lr19 so it can
be recombined with other useful 7DL genes. Twenty-nine 'Indis'-derived Lr 19 deletion mutants
were previously produced by gamma irradiation and a physical map was constructed. In this
study, the set of mutant lines were further analysed using 144 Sse8387I/Msei and 32 EcoRI/Msel
amplified fragment length polymorphism (AFLP) primer combinations. The previous physical
map, which was based on five restriction fragment length polymorphism (RFLP) markers and five
structural gene loci, was extended and now includes 95 novel AFLP markers (86 Sse8387I/Msei
and 9EcoRI!Msel markers), of which seven map close to Lr 19. Most of the deletions could be
ordered according to size and the improved map has already been used to characterise shortened
recombinant forms of the Lr 19 translocation. An unsuccessful attempt was made to convert one
of the seven markers closest to Lr 19 into a sequence-specific marker. However, an AFLP
marker located distally from Lr 19 was successfully converted into a sequence-specific marker in
collaboration with other researchers.
An attempt was also made to map and tag the Russian wheat aphid (RWA) resistance gene, Dn5.
A doubled haploid mapping population consisting of 94 lines was created and typed for Dn5,
four microsatellite loci and the endopeptidase locus, Ep-Dl. The Dn5 locus mapped 25.4 cM
and 28.6 cM distally from Xg.vm111 and Xg.vm437, respectively, but was not linked to Xgwm428, Xgwm3 7 or Ep-Dl. Tagging of Dn5 was attempted by screening twelve homozygous
resistant and seven homozygous susceptible F2 lines from a cross between 'Chinese Spring' and
'PI 294994' with 70 Sse8387IIi\1sei AFLP primer combinations. Only two potentially useful
polymorphisms (one in coupling and one in repulsion phase) were identified. Conversion of the
coupling phase marker to a sequence-specific marker was not successful.
The eyespot resistance gene, Pchl , was derived from Triticum ventricosum and is present in the
wheat VPM-1. Close association between Pchl and the endopeptidase Ep-Dlb allele has been
reported previously. Pchl/Ep-Dl was tagged by screening ten wheat genotypes (each
homozygous for the confirmed presence or absence of Pchl and/or Ep-Dl b) with 36
Sse83 87I/ Msei AFLP primer combinations. Three AFLP markers were closely associated with
Pchl I Ep-D 1, one of which was targeted for conversion into a sequence-specific marker. The
sequence-specific marker contained a microsatellite core motif and was found to be useful for
tagging Pchl!Ep-Dl. A genetic distance of 2 cM was calculated between the novel
microsatellite marker and Ep-Dl. The microsatellite marker was also polymorphic for the Lr 19
translocation and it was possible to map it between the Wsp-Dl and Sr25 loci.
In this dissertation, mapping and/or tagging of three important resistance genes were achieved.
Due to the fact that all markers used in these studies were not polymorphic between all of the
targeted regions, it was not possible to fully integrate the data obtained for the three regions. / AFRIKAANSE OPSOMMING: Chromosoom arm 7DL van broodkoring dra gene vir agronomies-belangrike kenrnerke soos
blaarroes, stamroes, Russiese koringluis en oogvlek weerstand. Sommige van hierdie gene kom
voor in blokke spesie-verhaalde chromatien wat hul bruikbaarheid in teling beperk. Die
genetiese kaarte van 7DL is swak ontwikkel en dit maak dit baie moeilik om hierdie gene en
spesie-verhaalde streke tydens teling te manipuleer. Hierdie proefskrif verteenwoordig 'n paging
om kennis van die relatiewe kaart liggings van drie weerstandsgene, met betekenisvolle
potensiaal in plaaslike tee! programme, te verbreed.
Die blaarroes weerstandsgeen, Lr 19, kom voor op 'n Thinopyrum ponticum-verhaalde
translokasie wat 'n groot terminale gedeelte van 7DL beslaan. Die translokasie dra ook gene vir
minder gewensde kenrnerke soos gee! meelkleur. Pogings is aangewend om die translokasie
deur homoeoloe parings-induksie te verkort. Die doe! was om nadelige gene te verplaas en die
hoeveelheid vreemde chromatien geassosieer met Lr 19 te minimiseer sodat dit met ander nuttige
gene op 7DL gerekombineer kan word. Nege-en-twintig 'Indis'-verhaalde Lr 19 delesie mutante
is vroeer met gamma bestraling geproduseer en gebruik om 'n fisiese kaart op te stel.
Teenswoordig is die stel mutante verder ontleed met behulp van 144 Sse8387I!Msei en 32
EcoRII Msel amplifikasie-fragment-lengte-polimorfisme (AFLP) inleier kombinasies. Die
bestaande fisiese kaart, wat gebaseer was op vyf restriksie-fragment-lengte-polimorfisme
(RFLP) merkers en vyf strukturele geen loki, is uitgebrei en sluit nou 95 unieke AFLP merkers
(86 Sse8387I/Msel en 9EcoRI/Msel merkers) in, waarvan sewe naby aan Lr19 karteer. Die
meeste van die delesies kon op grond van hulle grootte gegroepeer word en die verbeterde
fisiese kaart is alreeds gebruik om verkorte rekombinante vorms van die Lr 19 translokasie te
karakteriseer. 'n Onsuksesvolle paging is aangewend om een van die sewe merkers naaste aan
Lr 19 om te skakel na 'n volgorde-spesifieke merker. 'n AFLP merker wat distaal van Lr 19
karteer is egter wel suksesvol in samewerking met ander navorsers omgeskakel na 'n volgordespesifieke
merker.
'n Paging is ook aangewend om die Russiese koringluis (RKL) weerstandsgeen, Dn5, te karteer
en merkers gekoppel aan die geen te identifiseer. 'n Verdubbelde-haplo!ede karteringspopulasie
van 94 lyne is geskep en getipeer vir Dn5, vier mikrosatelliet loki en die endopeptidase lokus,
Ep-D1. Die Dn5 lokus karteer 25.4 cM en 28.6 cM distaal van Xgwml11 en Xgwm437, respektiewelik, maar was me gekoppel met Xgwm428, Xgwm37 of Ep-D1 me. Twaalf
homosigoties weerstandbiedende en sewe homosigoties vatbare F2 lyne uit die kruising:
'Chinese Spring' I 'PI 294994' is met 70 Sse8387VMsel AFLP inleier kombinasies getoets in 'n
poging om merkers vir Dn5 te identifiseer. Slegs twee moontlik bruikbare polimorfismes (een
in koppelings- en een in repulsie fase ), is ge'identifiseer. Omskakeling van die koppelingsfase
merker na 'n volgorde-spesifieke merker was onsuksesvol.
Die oogvlek weerstandsgeen, Pch1, is uit Triticum ventricosum oorgedra en kom voor in die
koringlyn, VPM-1. Noue koppeling van Pch1 en die endopeptidase alleel, Ep-D1 b, is vantevore
gerapporteer. Merkers is vir P chl I Ep-D 1 gevind deur tien koring genoti pes ( elkeen
homosigoties vir die bevestigde teenwoordigheid of afwesigheid van Pch1 en/of Ep-D1 b) te
toets met 36 Sse83871/kfsel AFLP inleier kombinasies. Drie AFLP merkers is gevind wat nou
koppel met Pchl!Ep-D1 , waarvan een gekies is vir omskakeling na 'n volgorde-spesifieke
merker. Die volgorde-spesifieke merker het 'n mikrosatelliet kernmotief bevat en was nuttig as
merker vir Pch1/Ep-D1. 'n Genetiese afstand van 2 cM is tussen die unieke mikrosatelliet
merker en Ep-D1 bereken. Die mikrosatelliet merker was ook polimorfies vir die Lr 19
translokasie en dit is tussen die Wsp-D1 en Sr25 loki gekarteer.
Kartering en/of identifikasie van merkers vir drie belangrike weerstandsgene was suksesvol in
hierdie studie. Omdat al die merkers wat gebruik is, nie polimorf was tussen al die streke van
belang nie, was dit nie moontlik om die data vir elk van die drie streke ten volle te integreer nie.
|
60 |
Regulation of the Vitis vinifera PGIP1 gene encoding a polygalacturonase-inhibiting proteinJoubert, Dirk Albert, 1973- 03 1900 (has links)
Thesis (PhD)--University of Stellenbosch, 2004. / ENGLISH ABSTRACT: Plant-pathogen interactions have been intensively investigated in the last decade. This
major drive towards understanding the fundamental aspects involved in plant disease
resistance is propelled by the obvious agricultural and economical benefits that are
intrinsically linked to disease and stress resistant plants. It is, therefore, not surprising
that fundamental research in this area is not just restricted to model organisms, such as
Arabidopsis and tobacco, but also extends to more traditional crop plants, such as
maize, bean, soybean, apples, grapevine etc. In grapevine for instance, several genes
involved in disease resistance have been isolated. One of these genes, encoding for a
polygalacturonase inhibiting protein (PGIP), has been studied extensively. PGIPs are
cell wall bound, contain leucine rich repeats (LRR) and are found in all dicotyledonous
plants so far examined. In most cases, pgip genes occur in small multigene families
and expression is often tissue specific and developmentally regulated. Up-regulation of
PGIP-encoding genes typically occurs upon pathogen infection, treatment with elicitors,
salicylic acid (SA), jasmonic acid (JA), cold treatment and wounding. Differential
regulation and specificity have been shown to occur between members of the same
multigene family. Differential regulation even extends to the utilization of separate
pathways to induce pgip genes from the same family in response to a single stress
stimulus. PGIPs interact with cell wall macerating polygalacturonases (PGs) that are
secreted by pathogenic fungi during the infection process. The antifungal action of
PGIPs is thought to depend on a dual action. The physical interaction of PGIP with PGs
has an inhibitionary effect, resulting in (i) a slower fungal infection rate and (ii) the
prolonged existence of long chain oligogalacturonides (OGs). These oligosaccharides
are able to elicit a general plant defense response, enabling the plant to further retard or
curb the spread of infection.
The main objective of this study was to investigate the regulatory aspects
underlying PGIP expression in grapevine. Unlike most characterized PGIP encoding
genes from other dicotyledonous plant species, no evidence to support the existence of
a V. vinifera PGIP multigene family could be found from either genetic or biochemical
analyses. Recently, a genomic DNA fragment from Vitis vinifera cv Pinotage was pathogen interactions with regards to the fundamental processes underlying defense
gene regulation. / AFRIKAANSE OPSOMMING: Die ooglopende voordele wat, vanuit 'n landboukundige én ekonomiese oogpunt, uit
siekte- en stresbestande plante spruit, het gedurende die laaste dekade aanleiding
gegee tot die ontwikkeling van plantpatogeen-interaksies as "n baie belangrike
studieveld. Dit was dus ook te verwagte dat fundamentele navorsing in hierdie area nie
net beperk gebly het tot modelorganismes soos Arabidopsis en tabak (ook natuurlik van
landboukundige belang) nie, maar ook na meer tradisionele landbougewasse soos
mielies, boontjies, sojaboontjies, appels, druiwe, ens. oorgevloei het. Verskeie
siekteweerstands-verwante gene is byvoorbeeld al vanuit wingerd geïsoleer. Een só "n
geen wat vir "n poligalakturonase-inhiberende proteïen (PGIP) kodeer, vorm deel van
hierdie groep gene. Die funksie en regulering van PGIP's is baie goed bestudeer.
Hierdie proteïene word normaalweg in die selwande van die meeste dikotiele plante
aangetref. Leusienryke herhalings is algemeen in PGIP's en hierdie tipe van herhalings
is kenmerkend van proteïene betrokke by proteïen-proteïen-interaksies. Verder word
pgip-gene gewoonlik in klein multigeenfamilies aangetref, waar in die meeste gevalle
die uitdrukking weefselspesifiek en die regulering spesifiek ten opsigte van die
ontwikkelingsfase is. Verskeie faktore kan tot die induksie van pgip-gene lei, soos
onder andere patogeen-infeksie, elisitoor-, salisiensuur-, jasmoonsuur- en kouebehandeling,
asook verwonding. Differensiële regulering word in baie gevalle tussen
lede van dieselfde multigeenfamilie aangetref. Hierdie differensiële regulering kan selfs
bemiddel word deur onafhanklike reguleringsweë in reaksie op dieselfde
induksiestimulus. PGIP's is in staat om te reageer met poligalakturonases (PGs), wat
selwande afbreek en wat gedurende die infeksieproses deur swamme of fungi afgeskei
word. Die effek van hierdie interaksie is tweeledig: (i) Die fisiese interaksie tussen PGIP
en PG moduleer die aktiwiteit van die PG deur die ensiemaksie te inhibeer, en (ii) PGinhibisie
lei tot die verhoogde stabiliteit van langketting-oligogalakturonades, molekules
wat daartoe in staat is om die weerstandsrespons van plante te ontlok. Die inhibisie
van die patogeen-PG's, tesame met die geïnduseerde weerstandrespons, stel die plant
dan in staat om verdere infeksie te vertraag of te verhoed. Die doel van hierdie studie was om die onderliggende aspekte van PGIPregulering
in wingerd te bestudeer. In teenstelling met die meeste plantspesies waar
pgip-gene in klein multigeenfamilies aangetref word, is daar nie 'n pgip-multigeenfamilie
in wingerd nie. Veelvuldige kopieë van In enkele pgip-geen word egter in die
wingerdgenoom aangetref. Daar is onlangs in ons laboratorium In genoom-DNAfragment
vanaf Vitis vinifera cv Pinotage geïsoleer wat die oopleesraam en
5'-stroomopsekwense van In PGIP-enkoderende geen (Vvpgip1) bevat. In hierdie
studie is die uitdrukkingspatroon van Vvpgip1 ten opsigte van weefselspesifisiteit,
korrelontwikkelingsfase, asook die effek van verskeie omgewings en patogeenverwante
stres-stimuli ontleed. Die regulatoriese meganismes van Vvpgip1 bevat spesifieke in
planta-ontwikkelingsfaseseine wat verder deur spesifieke faktore, insluitende
omgewings- en patogeenstres, gereguleer word. In lyn hiermee is mRNS-transkripte
van Vvpgip1 tot wortel- en korrelweefsels beperk, terwyl die mRNS-vlakke ook tussen
verskillende korrelontwikkelingsfases wissel. Kumulatiewe uitdrukking kon
waargeneem word in veráison-korrels in reaksie op verwonding en osmotiese stres.
Die weefselspesifieke uitdrukkingspatroon tipies van wingerd-PGIP is in blare opgehef
in reaksie op Botrytis cinerea-infeksie, verwonding, osmotiese stres, ouksien
(indoolasynsuur) en salisiensuur. PGIP-uitdrukking word ook onderdruk deur In
staurosporien-sensitiewe proteïenkinase, wat In goeie aanduiding is van die
betrokkenheid van proteïenfosforilasie in die seintransduksiekaskade wat tot PGIPuitdrukking
aanleiding gee. Die geïnduseerde PGIP-uitdrukkingsprofiel in wingerdblare
kan ook nageboots word in tabak wat met die Vvpgip1-geen en -promotor
getransformeer is. PG-inhibisie-eksperimente met membraan-geassosieerde proteïenekstrakte
van geïnduseerde wingerdblare het ook dieselfde profiel getoon as dié van
PGIP wat deur die Vvpgip1-geen geënkodeer is.
Die uitdrukkingsprofiel van PGIP in die transgeniese tabakplante het ook bewys
dat die promotor van die Vvpgip1-geen vir die geïnduseerde PGIP-uitdrukkingsprofiel in
wingerdblare verantwoordelik is. In silica-analise van die promotorarea dui op die
teenwoordigheid van verskeie cis-werkende elemente. Die kern promotor en
transkripsie-aanvangsgedeelte is gevolglik eksperimenteel bepaal. Verder het
uitdrukkingseksperimente met promotorfragmente verskeie dele van die promotor geïdentifiseer wat by stimulis-geassosieerde uitdrukking betrokke is. Posisioneel is
hierdie fragmente in goeie konteks met die voorspelde cis-werkende elemente en kan
dus die basis vorm vir verdere studies oor Vvpgip-regulering.
Met hierdie studie word die eerste data verskaf waar die regulering van PGIP
deur omgewingsverwante faktore verbind kan word met onwikkelingspesifieke
toestande in die plant. Verder verskaf die resultate verdere bewyse vir die rol van PGIP
in plant-patogeen-interaksies en lewer spesifieke bydraes tot die onderliggende
prosesse wat by die regulering van siekteweerstandverwante gene betrokke is.
|
Page generated in 0.1041 seconds