生物技术进展 ›› 2026, Vol. 16 ›› Issue (3): 585-594.DOI: 10.19586/j.2095-2341.2025.0180
文亚雄1,2(
), 周艳2, 刘大成2, 张利生2, 姜柔2, 曾聪2, 谭石勇1,2,3(
)
收稿日期:2025-12-15
接受日期:2026-01-08
出版日期:2026-05-25
发布日期:2026-07-14
通讯作者:
谭石勇
作者简介:文亚雄 E-mail: 564795454@qq.com;
基金资助:
Yaxiong WEN1,2(
), Yan ZHOU2, Dacheng LIU2, Lisheng ZHANG2, Rou JIANG2, Cong ZENG2, Shiyong TAN1,2,3(
)
Received:2025-12-15
Accepted:2026-01-08
Online:2026-05-25
Published:2026-07-14
Contact:
Shiyong TAN
摘要:
随着国家化肥农药减量增效(简称农业“双减”)政策的深入推进,在日益严峻的气候与环境挑战下,农业领域亟须通过产品创新以适配时代发展要求。在政策与现实的双重要求下,如何最大限度地提高作物产量与质量,并尽量减少农业生产对环境的影响成为实现粮食安全的潜在挑战之一。通过概述生物刺激素的定义,归纳总结了微生物及其代谢产物在改善作物生长及调控作物应对病虫害等生物胁迫与盐胁迫、温度胁迫、干旱胁迫及重金属胁迫等非生物胁迫方面的研究进展,揭示了微生物类生物刺激素在农业中的应用潜力,并对微生物类生物刺激素的未来发展进行了展望,以期为解决气候变化、环境污染等带来的粮食安全问题提供新的思路和方法。
中图分类号:
文亚雄, 周艳, 刘大成, 张利生, 姜柔, 曾聪, 谭石勇. 微生物类生物刺激素在农业上的研究现状[J]. 生物技术进展, 2026, 16(3): 585-594.
Yaxiong WEN, Yan ZHOU, Dacheng LIU, Lisheng ZHANG, Rou JIANG, Cong ZENG, Shiyong TAN. Research Satus of Microbial Biostimulant in Ariculture[J]. Current Biotechnology, 2026, 16(3): 585-594.
表1 诱导植物应对生物胁迫的部分微生物类生物刺激素及其作用机制
Table 1 Some microbial biostimulants that can induce plants to cope with biotic stress and their mechanisms of action
表2 可诱导植物应对非生物胁迫的部分微生物类生物刺激素及其作用机制
Table 2 Some microbial biostimulants that can induce plants to cope with abiotic stress and their mechanisms of action
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