Synergistic interaction of sodium nitroprusside and Serratia marcescens in mitigation of nematode stress in tomato

IF 3.2 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Deepak Kumar , Rajesh Kumari Manhas , Puja Ohri
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Abstract

Plant growth and development are negatively impacted by root-knot nematodes (RKNs), which in turn affects plant production. Chemical nematicides are one of the effective strategies for managing RKNs. But, high concentration of these chemicals is toxic to plants, environment and humans. Therefore, an in-vivo study was conducted to unravel the synergistic interplay sodium nitroprusside (SNP: nitric oxide donor) and, Serratia marcescens in M. incognita-stressed tomato plants. Results revealed that treatment with SNP and bacterial culture cells reduced gall formation and improved morphology. It also reduced nematode-induced oxidative stress in M. incognita-infested tomato plants as compared to untreated plants. Increased photosynthetic parameters including photosynthetic pigments and gas-exchange parameters was also observed in treated plants. Additionally, treated plants exhibited increased antioxidant defense system in terms of upregulated activities of enzymatic antioxidants (Ascorbate peroxidase, guaiacol peroxidase, polyphenol oxidase, catalase, glutathione-S-transferase and superoxide dismutase). Content of non-enzymatic antioxidants (Glutathione, ascorbic acid and tocopherol) was also enhanced in treated plants as compared to untreated nematode-infected plants. Further, treatment with SNP and S. marcescens increased secondary metabolites (total phenol, flavonoid and anthocyanin) and proline content. Reduction in nematode-induced nuclear and membrane damage was also observed in SNP and bacterial culture cells treated tomato plants. The integrative application of SNP and S. marcescens exhibited synergism and overpowered their individual application in reducing the negative effects of nematode stress. The findings of the current investigation suggest the integrative use of SNP and bacteria is more beneficial in alleviating nematode stress in plants.

Abstract Image

硝普钠和肉质沙雷氏菌在缓解番茄线虫胁迫方面的协同作用
根结线虫(root-knot nematodes, RKNs)对植物的生长发育产生负面影响,进而影响植物的产量。化学杀线虫剂是控制RKNs的有效策略之一。但是,高浓度的这些化学物质对植物、环境和人类都是有毒的。因此,一项体内研究揭示了硝普钠(SNP:一氧化氮供体)和粘质沙雷氏菌在M. incognita胁迫下番茄植株中的协同相互作用。结果显示,SNP和细菌培养细胞减少了胆的形成,改善了胆的形态。与未经处理的番茄植株相比,它还减少了线虫诱导的氧化应激。处理后的植物光合参数增加,包括光合色素和气体交换参数。此外,处理植株抗氧化防御系统增强,酶抗氧化剂(抗坏血酸过氧化物酶、愈创木酚过氧化物酶、多酚氧化酶、过氧化氢酶、谷胱甘肽- s转移酶和超氧化物歧化酶)活性上调。非酶促抗氧化剂(谷胱甘肽、抗坏血酸和生育酚)的含量也比未处理的线虫感染植物高。此外,SNP和粘多糖处理增加了次级代谢物(总酚、类黄酮和花青素)和脯氨酸含量。在SNP和细菌培养细胞处理的番茄植株中,线虫诱导的细胞核和膜损伤也有所减少。在减少线虫胁迫的负面影响方面,SNP和粘质葡萄球菌的综合应用显示出协同效应,并且超过了它们单独应用的效果。目前的研究结果表明,SNP和细菌的综合利用更有利于减轻植物的线虫胁迫。
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来源期刊
Nitric oxide : biology and chemistry
Nitric oxide : biology and chemistry 生物-生化与分子生物学
CiteScore
7.50
自引率
7.70%
发文量
74
审稿时长
52 days
期刊介绍: Nitric Oxide includes original research, methodology papers and reviews relating to nitric oxide and other gasotransmitters such as hydrogen sulfide and carbon monoxide. Special emphasis is placed on the biological chemistry, physiology, pharmacology, enzymology and pathological significance of these molecules in human health and disease. The journal also accepts manuscripts relating to plant and microbial studies involving these molecules.
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