Lignin Biosynthesis Gene Expression Is Associated with Age-related Resistance of Winter Squash to Phytophthora capsici

IF 1.2 4区 农林科学 Q3 HORTICULTURE Journal of the American Society for Horticultural Science Pub Date : 2023-09-01 DOI:10.21273/jashs05317-23
Safa A. Alzohairy, Bethany M. Moore, Raymond Hammerschmidt, Shin-Han Shiu, Mary K. Hausbeck
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Abstract

The Oomycete plant pathogen, Phytophthora capsici , causes root, crown, and fruit rot of winter squash ( Cucurbita moschata ) and limits production. Some C. moschata cultivars develop age-related resistance (ARR), whereby fruit develop resistance to P. capsici 14 to 21 days postpollination (DPP) because of thickened exocarp; however, wounding negates ARR. We uncovered the genetic mechanisms of ARR of two C. moschata cultivars, Chieftain and Dickenson Field, that exhibit ARR at 14 and 21 DPP, respectively, using RNA sequencing. The sequencing was conducted using RNA samples from ‘Chieftain’ and ‘Dickenson Field’ fruit at 7, 10, 14, and 21 DPP. A differential expression and subsequent gene set enrichment analysis revealed an overrepresentation of upregulated genes in functional categories relevant to cell wall structure biosynthesis, cell wall modification/organization, transcription regulation, and metabolic processes. A pathway enrichment analysis detected upregulated genes in cutin, suberin monomer, and phenylpropanoid biosynthetic pathways. A further analysis of the expression profile of genes in those pathways revealed upregulation of genes in monolignol biosynthesis and lignin polymerization in the resistant fruit peel. Our findings suggest a shift in gene expression toward the physical strengthening of the cell wall associated with ARR to P. capsici . These findings provide candidate genes for developing Cucurbita cultivars with resistance to P. capsici and improve fruit rot management in Cucurbita species.
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木质素生物合成基因表达与冬瓜抗辣椒疫霉年龄相关
辣椒疫霉(Phytophthora capsici)是一种由卵霉菌引起的植物病原菌,可引起冬瓜(Cucurbita moschata)的根、冠和果实腐烂,并限制产量。一些甜椒品种表现出年龄相关抗性(ARR),即果实在授粉后14 ~ 21天(DPP)由于外果皮增厚而对辣椒粉产生抗性;然而,损伤会否定ARR。利用RNA测序技术,揭示了分别在14 DPP和21 DPP表现出ARR的两个红薯品种chietain和Dickenson Field的ARR遗传机制。测序使用的是“chief”和“Dickenson Field”果实在7、10、14和21 DPP时的RNA样本。差异表达和随后的基因集富集分析显示,在细胞壁结构、生物合成、细胞壁修饰/组织、转录调控和代谢过程相关的功能类别中,上调基因的比例过高。途径富集分析检测到角质素、亚木质素单体和苯丙类生物合成途径中上调的基因。进一步分析这些通路中基因的表达谱,发现抗性果皮中单脂醇生物合成和木质素聚合基因上调。我们的研究结果表明,基因表达向与辣椒辣椒ARR相关的细胞壁物理强化的转变。这些发现为培育抗辣椒疫病的瓜类品种和改善瓜类的果腐病管理提供了候选基因。
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来源期刊
CiteScore
3.80
自引率
0.00%
发文量
31
审稿时长
2 months
期刊介绍: The Journal of the American Society for Horticultural Science publishes papers on the results of original research on horticultural plants and their products or directly related research areas. Its prime function is to communicate mission-oriented, fundamental research to other researchers. The journal includes detailed reports of original research results on various aspects of horticultural science and directly related subjects such as: - Biotechnology - Developmental Physiology - Environmental Stress Physiology - Genetics and Breeding - Photosynthesis, Sources-Sink Physiology - Postharvest Biology - Seed Physiology - Postharvest Biology - Seed Physiology - Soil-Plant-Water Relationships - Statistics
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