Deciphering the myth of cold tolerance in soybean: An overview of molecular breeding applications
The soybean is a source of several dietary components, including milk, protein, and oil. Cold stress has significantly curtailed soybean growth and yield in large areas and caused a high risk to global food security. The main objective of soybean breeders is to improve soybean resistance to cold s...
Main Authors: | , , , , , , , , , , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
AcademicPres
2023-06-01
|
Series: | Notulae Botanicae Horti Agrobotanici Cluj-Napoca |
Subjects: | |
Online Access: | https://www.notulaebotanicae.ro/index.php/nbha/article/view/13160 |
_version_ | 1827912546087075840 |
---|---|
author | Wei JIAN Qiu QIANG Guan YIJUN Ran QIUYAN Guan JIANING Zhao QIAN Zhao CHUNGANG Adnan RASHEED Wang YUEQIANG Liang CHEN Nazer MANZOOR Sameer H. QARI Aminah A. BARQAWI Hafiz A. WAHAB Xie ZHIMING Wang XIAOXUE |
author_facet | Wei JIAN Qiu QIANG Guan YIJUN Ran QIUYAN Guan JIANING Zhao QIAN Zhao CHUNGANG Adnan RASHEED Wang YUEQIANG Liang CHEN Nazer MANZOOR Sameer H. QARI Aminah A. BARQAWI Hafiz A. WAHAB Xie ZHIMING Wang XIAOXUE |
author_sort | Wei JIAN |
collection | DOAJ |
description |
The soybean is a source of several dietary components, including milk, protein, and oil. Cold stress has significantly curtailed soybean growth and yield in large areas and caused a high risk to global food security. The main objective of soybean breeders is to improve soybean resistance to cold stress. Conventional breeding approaches have made significant progress in developing cold tolerance in soybean; however, the high cost and complex genetic mechanism of cold tolerance hindered the large scale of these techniques. Molecular tools like quantitative trait loci (QTL), genome-wide association studies (GWAS), transcription factors (TFs), genetic engineering, and transcriptome have been used to identify cold tolerant genes/QTL and to develop soybean cultivars tolerant to cold stress. Clustered, regularly interspaced short palindromic repeats (CRISPR/Cas9) is used to increase the abiotic stress tolerance in soybean; however, its use to edit the cold tolerance genes in soybean is limited. Mapping of QTL has accelerated the master-assisted selection (MAS) in soybean. This review presents a detailed overview of molecular techniques and their use in developing cold-tolerant soybean cultivars. Using CRISPR/Cas9 would increase the speed of molecular breeding for cold tolerance in soybean. This information will assist soybean researchers in uncovering the basis of cold stress tolerance in soybean and adopting the most suitable way to breed the cold tolerant cultivars which can thrive under the extreme pressure of cold stress.
|
first_indexed | 2024-03-13T02:18:16Z |
format | Article |
id | doaj.art-b0c67d7c95ca4512a7014168cd6363ef |
institution | Directory Open Access Journal |
issn | 0255-965X 1842-4309 |
language | English |
last_indexed | 2024-03-13T02:18:16Z |
publishDate | 2023-06-01 |
publisher | AcademicPres |
record_format | Article |
series | Notulae Botanicae Horti Agrobotanici Cluj-Napoca |
spelling | doaj.art-b0c67d7c95ca4512a7014168cd6363ef2023-06-30T11:03:33ZengAcademicPresNotulae Botanicae Horti Agrobotanici Cluj-Napoca0255-965X1842-43092023-06-0151210.15835/nbha51213160Deciphering the myth of cold tolerance in soybean: An overview of molecular breeding applicationsWei JIAN0Qiu QIANG1Guan YIJUN2Ran QIUYAN3Guan JIANING4Zhao QIAN5Zhao CHUNGANG6Adnan RASHEED7Wang YUEQIANG8Liang CHEN9Nazer MANZOOR10Sameer H. QARI11Aminah A. BARQAWI12Hafiz A. WAHAB13Xie ZHIMING14Wang XIAOXUE15Jilin Agricultural University, College of Agronomy, Changchun, 130118; Jilin Changfa Modern Agricultural Science and Technology Group Co., Ltd.Soybean Research Institude, Jinlin Academy of Agricultural Sciences/ National Engineering Research Center of Soybean, Changchun 130033, JilinNorthwest Agricultural and Forestry University, ShanxiBaicheng Normal University, College of Life Sciences, Baicheng, JilinShenyang Agricultural University, Rice Research Institute, ShenyangJilin Changfa Modern Agricultural Science and Technology Group Co., LtdJilin Changfa Modern Agricultural Science and Technology Group Co., Ltd.Jilin Changfa Modern Agricultural Science and Technology Group Co., Ltd.Jilin Academy of Agricultural Sciences & National Engineering Research Center for Soybean, ChangchunJilin Academy of Agricultural Sciences & National Engineering Research Center for Soybean, ChangchunYunnan Agricultural University, College of Agronomy and Biotechnology, Kunming 650201Al-Jumum University College, Department of Biology, Umm Al-Qura University, MakkahAl-Leith University College, Department of Chemistry, Umm Al Qura University, MakkahUniversity of Agriculture Faisalabad, Department of AgronomyBaicheng Normal University, College of Life Sciences, Baicheng, JilinShenyang Agricultural University, Rice Research Institute, Shenyang The soybean is a source of several dietary components, including milk, protein, and oil. Cold stress has significantly curtailed soybean growth and yield in large areas and caused a high risk to global food security. The main objective of soybean breeders is to improve soybean resistance to cold stress. Conventional breeding approaches have made significant progress in developing cold tolerance in soybean; however, the high cost and complex genetic mechanism of cold tolerance hindered the large scale of these techniques. Molecular tools like quantitative trait loci (QTL), genome-wide association studies (GWAS), transcription factors (TFs), genetic engineering, and transcriptome have been used to identify cold tolerant genes/QTL and to develop soybean cultivars tolerant to cold stress. Clustered, regularly interspaced short palindromic repeats (CRISPR/Cas9) is used to increase the abiotic stress tolerance in soybean; however, its use to edit the cold tolerance genes in soybean is limited. Mapping of QTL has accelerated the master-assisted selection (MAS) in soybean. This review presents a detailed overview of molecular techniques and their use in developing cold-tolerant soybean cultivars. Using CRISPR/Cas9 would increase the speed of molecular breeding for cold tolerance in soybean. This information will assist soybean researchers in uncovering the basis of cold stress tolerance in soybean and adopting the most suitable way to breed the cold tolerant cultivars which can thrive under the extreme pressure of cold stress. https://www.notulaebotanicae.ro/index.php/nbha/article/view/13160cold stressCRISPR/Cas9MASsoybeanQTLyield |
spellingShingle | Wei JIAN Qiu QIANG Guan YIJUN Ran QIUYAN Guan JIANING Zhao QIAN Zhao CHUNGANG Adnan RASHEED Wang YUEQIANG Liang CHEN Nazer MANZOOR Sameer H. QARI Aminah A. BARQAWI Hafiz A. WAHAB Xie ZHIMING Wang XIAOXUE Deciphering the myth of cold tolerance in soybean: An overview of molecular breeding applications Notulae Botanicae Horti Agrobotanici Cluj-Napoca cold stress CRISPR/Cas9 MAS soybean QTL yield |
title | Deciphering the myth of cold tolerance in soybean: An overview of molecular breeding applications |
title_full | Deciphering the myth of cold tolerance in soybean: An overview of molecular breeding applications |
title_fullStr | Deciphering the myth of cold tolerance in soybean: An overview of molecular breeding applications |
title_full_unstemmed | Deciphering the myth of cold tolerance in soybean: An overview of molecular breeding applications |
title_short | Deciphering the myth of cold tolerance in soybean: An overview of molecular breeding applications |
title_sort | deciphering the myth of cold tolerance in soybean an overview of molecular breeding applications |
topic | cold stress CRISPR/Cas9 MAS soybean QTL yield |
url | https://www.notulaebotanicae.ro/index.php/nbha/article/view/13160 |
work_keys_str_mv | AT weijian decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT qiuqiang decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT guanyijun decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT ranqiuyan decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT guanjianing decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT zhaoqian decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT zhaochungang decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT adnanrasheed decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT wangyueqiang decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT liangchen decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT nazermanzoor decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT sameerhqari decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT aminahabarqawi decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT hafizawahab decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT xiezhiming decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications AT wangxiaoxue decipheringthemythofcoldtoleranceinsoybeananoverviewofmolecularbreedingapplications |