Padhy Asish Kumar, Sharma Achla, Sharma Himanshu, Srivastava Puja, Singh Satinder, Kaur Parampreet, Kaur Jaspal, Kaur Satinder, Chhuneja Parveen, Bains Navtej Singh
Punjab Agricultural University, Ludhiana, India.
Front Genet. 2023 Jan 19;14:1075767. doi: 10.3389/fgene.2023.1075767. eCollection 2023.
Globally, malnutrition has given birth to an alarming predicament, especially in developing countries, and has extensively shifted consumer preferences from conventional high-energy diets to a nutritionally balanced, cost-effective, sustainable, and healthy lifestyle. In keeping with this view and the mandate for developing high-yielding, disease-resistant biofortified staple food (wheat) for catering to the demand-driven market, the current research aimed at stacking together the enhanced grain protein content, carotenoid content, and disease resistance in an elite bread wheat background. The gene () and the gene were used as novel sources for enhancing the grain carotenoid and protein content in the commercial elite bread wheat cultivar HD2967. The combination also led to the stacking of resistance against all three foliar rusts owing to linked resistance genes. A stepwise hybridization using Parent 1 (HD2967 + ) with Parent 2 (PBW550 + ), coupled with a phenotypic-biochemical selection, narrowed down 2748 F individuals to a subset of 649 F plants for molecular screening. The gene-specific markers , and for the genes and respectively, were employed for forward selection. Four bread wheat lines positive for all the desired genes with high carotenoid (>8ppm) and protein (>13%) content were raised to the F generation and will be evaluated for yield potential after bulking. These improved advanced breeding lines developed following multipronged efforts should prove a valuable and unique source for the development of cultivars with improved nutritional quality and rust resistance in wheat breeding programs.
在全球范围内,营养不良已造成了一种令人担忧的困境,尤其是在发展中国家,并且已广泛地使消费者偏好从传统的高能量饮食转向营养均衡、性价比高、可持续且健康的生活方式。秉持这一观点以及为迎合需求驱动型市场而培育高产、抗病生物强化主食(小麦)的使命,当前的研究旨在在一个优良面包小麦背景中整合提高的籽粒蛋白质含量、类胡萝卜素含量和抗病性。基因()和基因被用作在商业优良面包小麦品种HD2967中提高籽粒类胡萝卜素和蛋白质含量的新来源。由于连锁的抗性基因,这种组合还导致了对所有三种叶锈病抗性的整合。使用亲本1(HD2967 + )与亲本2(PBW550 + )进行逐步杂交,并结合表型生化选择,将2748个F个体缩小到649个F植株的子集进行分子筛选。分别针对基因和的基因特异性标记和用于正向选择。四个对所有所需基因呈阳性、类胡萝卜素含量高(>8ppm)且蛋白质含量高(>13%)的面包小麦品系被培育到F代,在混收后将对其产量潜力进行评估。通过多方面努力培育出的这些改良的高级育种品系应该会成为小麦育种计划中培育营养品质和抗锈性得到改善的品种的宝贵且独特的资源。