桑椹菌核病研究进展
Research progress of mulberry sclerotial disease
查看参考文献67篇
文摘
|
桑椹菌核病是由3种子囊菌真菌引起的相似症状病害的统称,为果桑生产中的毁灭性真菌病害,严重制约果桑产业的发展。这3种病原菌同为死体营养型病原菌,其侵染手段多样,侵染机制复杂。由于3种病原菌在人工培养上存在不同程度的困难(桑实杯盘菌和肉阜状杯盘菌难培养,核地杖菌在人工培养基上不能完成生活史),在一定程度上限制了病原菌的研究。本文综述了桑椹菌核病的侵染循环、病原菌、病害流行、病原菌与寄主互作等方面的研究进展,并对未来的研究进行了展望,以期对桑椹菌核病的深入研究提供参考。 |
其他语种文摘
|
Mulberry sclerotial disease, a general term for diseases with similar symptoms caused by three ascomycetous fungi, is a devastating fungal disease for fruit mulberry production, which seriously restricts the development of the mulberry industry. The three pathogens are necrotrophic fungi, with various infection means and complicated infection mechanisms. The different degrees of difficulty in artificial cultivation of these three pathogens limit the research process of pathogens to a certain extent. For instance, Ciboria shiraiana and Ciboria carunculoides are difficult to cultivate whereas Scleromitrula shiraiana cannot complete the life cycle on artificial medium. This article summarized the research progress on disease cycle, pathogens, disease epidemic, pathogens-host interaction, and prospects for future research. The studies would provide a reference for further research on mulberry sclerotial disease. |
来源
|
植物病理学报
,2023,53(1):1-12 【核心库】
|
DOI
|
10.13926/j.cnki.apps.000628
|
关键词
|
桑椹菌核病
;
病害循环
;
病害流行
;
致病机制
|
地址
|
1.
重庆市风景园林科学研究院植物保护研究所, 重庆, 401329
2.
川渝共建乡土植物种质创新与利用重庆市重点实验室, 川渝共建乡土植物种质创新与利用重庆市重点实验室, 重庆, 401329
3.
西南大学, 家蚕基因组生物学国家重点实验室, 重庆, 400716
|
语种
|
中文 |
文献类型
|
综述型 |
ISSN
|
0412-0914 |
学科
|
植物保护 |
基金
|
国家重点研发计划
;
重庆市科技局绩效引导专项院管项目
|
文献收藏号
|
CSCD:7424060
|
参考文献 共
67
共4页
|
1.
Whetzel H H. The cup fungus, Ciboria carunculoides, pathogenic on mulberry fruits.
Mycologia,1945,37(4):476-491
|
CSCD被引
7
次
|
|
|
|
2.
Kohn L M. The genus Scleromitrula (Sclerotiniaceae), Episclerotium gen. nov. (Leotiacwae) and allied stipitate-capitate species with reduced ectal excipula.
Transactions of the Mycological Society of Japan,1984,25:23-38
|
CSCD被引
1
次
|
|
|
|
3.
Ye M. Effect of a fungal pathogen, Trichoderma hamatum, on growth and germination of Ciboria carunculoides under laboratory conditions.
Pakistan Journal of Zoology,2014,46(5):1377-1384
|
CSCD被引
2
次
|
|
|
|
4.
Lv Z. Investigation and rapid detection of fungal pathogens causing mulberry sclerotial disease in south-west China.
Plant Pathology,2021,71(3):684-695
|
CSCD被引
1
次
|
|
|
|
5.
Zhu Z. Establishment and application of real-time PCR for detecting of pathogens causing mulberry fruit sclerotiniosis (in Chinese).
植物保护学报,2021:1-14
|
CSCD被引
1
次
|
|
|
|
6.
Xue Z. Survey on influencing factors of mulberry fruit hypertrophic sclerote disease occurrence and chemical control test on it (in Chinese).
蚕业科学,2015,41(2):226-233
|
CSCD被引
1
次
|
|
|
|
7.
Zheng Z. Field resistance evaluation of 21 fruit mulberry germplasm resources against mulberry fruit hypertrophic sclerote disease (in Chinese).
蚕业科学,2015,41(6):1011-1016
|
CSCD被引
1
次
|
|
|
|
8.
Chen Y. Field resistance evaluation of 15 mulberry germplasm resources against mulberry sclerote disease (in Chinese).
蚕学通讯,2021,41(3):8-12
|
CSCD被引
1
次
|
|
|
|
9.
Tang C. Occurrence and control on mulberry sorosis disease (in Chinese).
蚕桑通报,2005,36(3):10-12
|
CSCD被引
1
次
|
|
|
|
10.
Sultana R. Bacillus thuringiensis C25 suppresses popcorn disease caused by Ciboria shiraiana in mulberry (Morus australis L.).
Biocontrol Science and Technology,2016,26(2):145-162
|
CSCD被引
12
次
|
|
|
|
11.
Lu Z. Laccase gene Shlac is involved in the growth and melanin biosynthesis of Scleromitrula shiraiana.
Phytopathology,2017,107(3):353-361
|
CSCD被引
5
次
|
|
|
|
12.
Scholthof K B G. The disease triangle: pathogens, the environment and society.
Nature Reviews Microbiology,2007,5(2):152-156
|
CSCD被引
7
次
|
|
|
|
13.
Kuai Y. A review on pathogens of mulberry fruit sclerotiniosis and its control technology (in Chinese).
蚕业科学,2012,38(6):1099-1104
|
CSCD被引
1
次
|
|
|
|
14.
Zong Z.
Principles of Plant Pathology (2nd Ed.) (in Chinese),2010
|
CSCD被引
1
次
|
|
|
|
15.
Heckert S. Disease incidence and ascospore dispersal from cut hazelnut branches colonized by Anisogramma anomala.
Plant Disease,2014,98(6):834-838
|
CSCD被引
1
次
|
|
|
|
16.
Rieux A. Long-distance wind-dispersal of spores in a fungal plant pathogen: estimation of anisotropic dispersal kernels from an extensive field experiment.
PLoS One,2014,9(8):e103225
|
CSCD被引
3
次
|
|
|
|
17.
Ronnas C. Discovery of long-distance gamete dispersal in a lichenforming ascomycete.
New Phytologist,2017,216(1):216-226
|
CSCD被引
1
次
|
|
|
|
18.
Rennberger G. Dynamics of the ascospore dispersal of Stagonosporopsis citrulli, a causal agent of gummy stem blight of cucurbits.
Plant Pathology,2021,70(8):1908-1919
|
CSCD被引
2
次
|
|
|
|
19.
Hong S K. Identification and distribution of two fungal species causing sclerotial disease on mulberry fruits in Korea.
Mycobiology,2007,35(2):87-90
|
CSCD被引
14
次
|
|
|
|
20.
Kang X. Cloning and functional analysis of the melanin biosynthesis gene in Scleromitrula shiraiana (in Chinese).
植物病理学报,2017,47(4):495-504
|
CSCD被引
1
次
|
|
|
|
|