Comparative proteomic analysis of resistant and susceptible cotton genotypes in response to leaf hopper infestation

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-07-14 DOI:10.1016/j.jprot.2024.105258
Manivannan Alagarsamy , Thomas Cheeran Amal , Shankarganesh Karuppan , Karthikeyan Adhimoolam
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Abstract

The cotton leaf hopper is a major pest in cotton, causing a hopper burn in leaves. In this study, a comparative proteomic analysis of NDLH2010 (Resistant) and LRA5166 (Susceptible), infected with leaf hopper, was employed using a nano LC-MS/MS approach. A total of 1402 proteins varied significantly between leaf hopper-infected and control plants. The resistant and susceptible genotypes had differentially expressed proteins (DEPs) of 743 and 659, respectively. Functional annotation of DEPs revealed that the DEPs were primarily associated with stress response, hormone synthesis, photosynthesis, cell wall, and secondary metabolites. Notably, DEPs such as polyphenol oxidase, carboxypeptidase, heat shock proteins, protein BTR1-like isoform X2, chaperone protein ClpB1, and β glucosidase factors associated with environmental stress response were also detected. Quantitative real-time PCR (qRT-PCR) analysis confirmed a positive correlation between protein abundances and transcripts for all genes. Collectively, this study provides the molecular mechanisms associated with cotton defense responses against leaf hopper.

Significance statement

Cotton, a natural fiber, assumes a pivotal role as a raw material for textile industries, thereby bearing significant importance in the global economy. The cotton production sector is considerably affected by both biotic and abiotic stresses. The cotton leaf hopper (Amrasca biguttula biguttula (Ishida)) stands as a polyphagous insect, emerging as a dominant sap-feeding pest of the cotton crop. The continuous onslaught of sap-feeding insects on cotton plants has a detrimental impact, with leaf hoppers potentially causing yield reductions of up to 50%. Therefore, comprehending the molecular interplay between cotton and leaf hopper, elucidated at the proteome level, holds promise for more effective pest management strategies. This approach holds the potential to offer insights that contribute to the development of leaf hopper-resistant cotton varieties.

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抗性和易感性棉花基因型对叶蝉侵染反应的比较蛋白质组分析。
棉花叶蝉是棉花的主要害虫,会造成叶片灼伤。本研究采用纳米 LC-MS/MS 方法,对感染叶蝉的 NDLH2010(抗性)和 LRA5166(易感)进行了蛋白质组比较分析。共有 1402 种蛋白质在叶蝉感染植株和对照植株之间存在显著差异。抗性基因型和易感基因型的差异表达蛋白(DEPs)分别为 743 个和 659 个。DEPs 的功能注释显示,DEPs 主要与胁迫反应、激素合成、光合作用、细胞壁和次生代谢物有关。值得注意的是,还检测到了与环境胁迫响应相关的多酚氧化酶、羧肽酶、热休克蛋白、蛋白 BTR1-like isoform X2、伴侣蛋白 ClpB1 和 β 葡萄糖苷酶因子等 DEPs。定量实时 PCR(qRT-PCR)分析证实了所有基因的蛋白质丰度与转录本之间的正相关性。总之,本研究提供了与棉花防御叶蝉反应相关的分子机制。意义说明:棉花是一种天然纤维,作为纺织工业的原材料,在全球经济中占有举足轻重的地位。棉花生产部门受到生物和非生物胁迫的严重影响。棉花叶蝉(Amrasca biguttula biguttula (Ishida))是一种多食性昆虫,是棉花作物的主要食液害虫。吸食汁液的昆虫对棉花植株的持续侵袭造成了有害影响,叶蝉可能导致高达 50%的减产。因此,通过在蛋白质组水平上阐明棉花与叶蝉之间的分子相互作用,有望制定更有效的害虫管理策略。这种方法有可能提供有助于开发抗叶蝉棉花品种的见解。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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