Association of single nucleotide polymorphisms in LpIRI1 gene with freezing tolerance traits in perennial ryegrass

被引:0
作者
A. Aleliūnas
K. Jonavičienė
G. Statkevičiūtė
D. Vaitiekūnaitė
V. Kemešytė
T. Lübberstedt
G. Brazauskas
机构
[1] Lithuanian Research Centre for Agriculture and Forestry,Institute of Agriculture
[2] Vytautas Magnus University,Department of Agronomy
[3] Iowa State University,undefined
来源
Euphytica | 2015年 / 204卷
关键词
Association mapping; Electrolyte leakage; Proline; Winter survival;
D O I
暂无
中图分类号
学科分类号
摘要
Perennial ryegrass is an important agricultural crop, however, it is susceptible to winterkill. Freezing injury is caused primarily by ice formation. The LpIRI1 protein has the potential to inhibit ice recrystallization, thus minimize the damage. An association study was conducted using single nucleotide polymorphisms obtained through allele sequencing of the LpIRI1 gene and phenotypic data were collected using two phenotyping platforms in a perennial ryegrass association mapping population of 76 diverse genotypes. Winter survival (FWS) was evaluated under field conditions, while tiller survival (PTS) and electrolyte leakage (EL) at −8 and −12 °C were determined under controlled-environment conditions. Proline content (PC) in cold-acclimated plants was measured prior to the freezing test. Significant variation in FWS, PTS, EL and PC was observed among genotypes in our panel. EL and PTS revealed significant negative correlations at −8 °C (rs = −0.40) and −12 °C (rs = −0.49). PC, however, did not show significant correlations with any of the measured traits, while FWS was correlated (rs = −0.48) with EL at −12 °C. The LpIRI1 gene was found to be highly polymorphic with an average SNP frequency of 1 SNP per 16 bp. Association analysis revealed two non-synonymous SNPs being associated with increased EL, both located in the LpIRI1 leucine-rich repeat. The results indicate that allelic variation in the LpIRI1 gene plays an important role in the cell membrane integrity of perennial ryegrass during freezing, and can be exploited for developing more freezing tolerant cultivars.
引用
收藏
页码:523 / 534
页数:11
相关论文
共 243 条
[1]  
Alia P(2001)Effect of proline on the production of singlet oxygen Amino Acids 21 195-200
[2]  
Mohanty P(2011)QTL analyses and comparative genetic mapping of frost tolerance, winter survival and drought tolerance in meadow fescue ( Theor Appl Genet 123 369-382
[3]  
Matysik J(2003) Huds.) Phytochemistry 64 1187-1196
[4]  
Alm V(2001)Antifreeze proteins in higher plants Plant Growth Regul 00 1-10
[5]  
Busso CS(2008)The use of the electrolyte leakage method for assessing cell membrane stability as a water stress tolerance test in durum wheat Cell Mol Life Sci 65 2307-2333
[6]  
Ergon A(2011)The leucine-rich repeat structure Ann Bot 168 1271-1279
[7]  
Rudi H(2011)Nuclear DNA amounts in angiosperms: targets, trends and tomorrow J Plant Physiol 23 2633-2635
[8]  
Larsen A(2007)Differences in leaf proteome response to cold acclimation between Bioinformatics 160 283-292
[9]  
Humphreys MW(2011) plants with distinct levels of frost tolerance Plant Sci 47 481-492
[10]  
Rognli OA(2013)TASSEL: sotware for association mapping of complex traits in diverse samples PLoS One 37 826-830