|Table of Contents|

Research Progress on Prevention and Control of Crop Fungal Diseases by RNA Interference Techniques

《北方园艺》[ISSN:1001-0009/CN:23-1247/S]

Issue:
2024年3
Page:
127-136
Research Field:
Publishing date:

Info

Title:
Research Progress on Prevention and Control of Crop Fungal Diseases by RNA Interference Techniques
Author(s):
LI Shuang1YAN Gengxuan12TIAN Yuan13ZHANG Shumei1PAN Yu1
(1.Institute of Microbiology,Heilongjiang Academy of Sciences,Harbin,Heilongjiang 150010;2.College of Life Science,Northeast Forestry University,Harbin,Heilongjiang 150040;3.College of Food Science,Northeast Agricultural University,Harbin,Heilongjiang 150030)
Keywords:
RNAicropfungal diseaseresearch progress
PACS:
Q 939.9
DOI:
10.11937/bfyy.20232771
Abstract:
Crop fungal diseases were common and serious,which was one of the main limiting factors to the high quality development of modern agriculture.RNA interference (RNAi) was a mechanism of homologous mRNA degradation mediated by double-stranded RNA (dsRNA) and silencing the expression of related genes in eukaryotes.In recent years,using RNA interference technology to prevent and control crop fungal diseases has become a research hotspot,and has been successfully applied to agricultural production,showing a good application prospect.In this study,the current situation of crop fungal disease control,the principle of RNA interference technology,the mechanism of fungal disease control and its research progress in crop fungal disease control,the existing problems and application prospects of RNA interference-based biotechnology were reviewed,in order to provide reference for the extensive application of RNA interference technology in crop fungal disease control.

References:

[1]GRENIER B,APPLEGATE T J.Modulation of intestinal functions following mycotoxin ingestion:Meta-analysis of published experiments in animals[J].Toxins,2013,5(2):396-430.[2]FISHER M C,HENK D A,BRIGGS C J,et al.Emerging fungal threats to animal,plant and ecosystem health[J].Nature,2012,484:186-194.[3]田甲佳,刘良燕.马铃薯主要真菌病害及防治方法研究进展[J].中国马铃薯,2021,35(5):444-455.[4]SANG H,POPKO J,JUNG G.Evaluation of a Sclerotinia homoeocarpa population with multiple fungicide resistance phenotypes under difering selection pressures[J].Plant,2019,103:685-690.[5]于涵.马铃薯早疫病生防菌耐代森猛锌菌株的筛选及其防效的研究[D].大庆:黑龙江八一农垦大学,2012.[6]卢国甫.马铃薯晚疫病的影响因素及防治对策[J].中国果菜,2018,38(11):90-92.[7]GHEYSEN G,VANHOLME B.RNAi from plants to nematodes[J].Trendsin Biotechnology,2007,25(3):89-92.[8]SHABALINA S A,KOONIN E V.Origins and evolution of eukaryotic RNA interference[J].Trends in Ecology Evolution,2008,23(10):578-587.[9]D′ARIO M,GRIFFITHS-JONES S,KIM M.Small RNAs:Big impact on plant development[J].Trends in Plant Science,2017,22(12):1056-1068.[10]DENG Y,WANG J,TUNG J,et al.A role for small RNA in regulating innate immunity during plant growth[J].PLoS Pathogens,2018,14(1):e1006756.[11]SCHAEFER L K,PARLANGE F,BUCHMANN G,et al.Cross-kingdom RNAi of pathogen effectors leads to quantitative adult plant resistance in wheat[J].Frontiers in Plant Science,2020(11):253.[12]BAULCOMBE D.RNA silencing in plants[J].Nature,2004,431(7006):356-363.[13]ZHANG H,DEMIRER G S,ZHANG H,et al.DNA nanostructures coordinate gene silencing in mature plants[J].Proceedings of the National Academy of Sciences of the United States of America,2019,116 (15):7543-7548.[14]SIJEN T,FLEENOR J,SIMMER F,et al.On the role of RNA amplification in dsRNA-triggered gene silencing[J].Cell,2001,107(4):465-476.[15]MELNYK C W,MOLNAR A,BAULCOMBE D C.Intercellular and systemic movement of RNA silencing signals[J].The EMBO Journal,2011,30(17):3553-3563.[16]CASTEL S E,MARTIENSSEN R A.RNA interference in the nucleus:Roles for small RNAs in transcription,epigenetics and beyond[J].Nature Reviews Genetics,2013(14):100-112.[17]NAPOLI C,LEMIEUX C,JORGENSEN R.Introduction of a chimeric chalcone synthase gene into petunia results in reversible co-suppression of homologous genes in trans[J].The Plant Cell,1990,2(4):279-289.[18]ROMANO N,MACINO G.Quelling-transient inactivation of gene-expression in Neurospora crassa by transformation with homologous sequences[J].Molecular Microbiology,1992,6(22):3343-3353.[19]FIRE A,XU S Q,MONTGOMERY M K,et al.Potent and specific genetic interference by double-stranded RNA in Caenorhabditis elegans[J].Nature,1998,391(6669):806-811.[20]谢锋华,农知旺,吴娟,等.RNAi在作物病虫害防治中的应用现状综述[J].现代农业科技,2022(8):100-104.[21]程伟,李和平,何水林,等.寄主诱导的基因沉默提高植物真菌病害抗性研究进展[J].作物学报,2017,43(8):1115-1121.[22]WANG Y B,ZHANG H,LI H C,et al.Second-generation sequencing supply an effective way to screen RNAi targets in large scale for potential application in pest insect control[J].PLoS One,2011,6(4):e18644.[23]ZHU L,ZHU J,LIU Z,et al.Host-induced gene silencing of rice blast fungus Magnaporthe oryzae pathogenicity genes mediated by the brome mosaic virus[J].Genes,2017,8(10):241.[24]GOVINDARAJULU M,EPSTEIN L,WROBLEWSKI T,et al.Host-induced gene silencing inhibits the biotrophic pathogen causing downy mildew of lettuce[J].Plant Biotechnology Journal,2015,13(7):875-883.[25]龚流娥,应淑敏,张雅芬,等.病虫害RNAi技术中的外源RNA递送策略[J].生物工程学报,2023,39(2):459-471.[26]GONG D,FERRELL J E.Picking a winner:New mechanistic insights into the design of effective siRNAs[J].Trends in Biotechnol,2004,22(9):451-454.[27]REYNOLDS A,LEAKE D,BOESE Q,et al.Rational siRNA design for RNA interference[J].Nat Biotechnol,2004,22(3):326-330.[28]赵德根,王建校,刘旭,等.小干扰RNA的研究进展[J].现代生物医学进展,2014,14(4):792-794.[29]GUAN R,CHU D,HAN X,et al.Advances in the development of microbial double-stranded RNA production systems for application of RNA interference in agricultural pest control[J].Frontiers in Bioengineering and Biotechnology,2021(9):753-790.[30]MU X,GREENWALD W,AHMAD S,et al.An origin of the immunogenicity of in vitro transcribed RNA[J].Nucleic Acids Research,2018,46(10):5239-5249.[31]TIMMONS L,COURT D L,FIRE A.Ingestion of bacterially expressed dsRNAs can produce specific and potent genetic interference in Caenorhabditis elegans[J].Gene,2001,263(1/2):103-112.[32]MYSORE K,LI P,WANG C W,et al.Characterization of a broad-based mosquito yeast interfering RNA larvicide with a conserved target site in mosquito semaphorin-1a genes[J].Parasites and Vectors,2019,12(1):256.[33]关若冰,李海超,苗雪霞.RNA生物农药的商业化现状及存在问题[J].中国农业科学,2022,55(15):2949-2960.[34]ZHANG S,HONG Z.Mobile RNAs:The magical elf traveling between plant and the associated organisms[J].ExRNA,2019(1):8.[35]姚丙晨,孙玥,孙林静,等.病毒诱导的基因沉默的发展及在植物生物逆境上的应用[J].中国农学通报,2016,32(9):131-136.[36]YIN C T,JURGENSON J E,HULBERT S H.Development of a host-induced RNAi system in the wheat stripe rust fungus Puccinia striiformis f.sp.tritici[J].Molecular Plant-Microbe Interactions:MPMI,2011,24(5):554-561.[37]GHAG S B.Host induced gene silencing,an emerging science to engineer crop resistance against harmful plant pathogens[J].Physiological and Molecular Plant Pathology,2017,100:242-254.[38]NOWARA D,GAY A,LACOMME C,et al.HIGS:Host-induced gene silencing in the obligate biotrophic fungal pathogen Blumeria graminis[J].The Plant Cell,2010,22(9):3130-3141.[39]MENG Y,SHAO C,WANG H,et al.Target mimics:An embedded layer of microRNA-involved gene regulatory networks in plants[J].BMC Genomics,2012(13):19.[40]程伟,李和平,何水林,等.寄主诱导的基因沉默提高植物真菌病害抗性研究进展[J].作物学报,2017,43(8):1115-1121.[41]肖瑶,王教瑜,李玲,等.寄主诱导的基因沉默技术研究和应用进展[J].植物保护学报,2020,47(1):11-17.[42]MAT J N S,OTHMAN R Y,HARIKRISHNA J A.Global trends in research and commercialization of exogenous and endogenous RNAi technologies for crops[J].Critical Reviews in Biotechnology,2019,39(1):67-78.[43]KOCH A,BIEDENKOPF D,FURCH A,et al.An RNAi-based control of Fusarium graminearum infections through spraying of long dsRNAs involves a plant passage and is controled by the fungal silencing machinery[J].PLoS Pathogens,2016,12 (10):e1005901.[44]WANG M,JIN H.Spray-Induced gene silencing:A powerful innovative strategy for crop protection[J].Trends in Microbiology,2017,25(1):4-6.[45]HASHIRO S,CHIKAMI Y,KAWAGUCHI H,et al.Efficient production of long double-stranded RNAs applicable to agricultural pest control by Corynebacterium glutamicum equipped with coliphage T7-expression system[J].Applied Microbiology and Biotechnology,2021,105(12):4987-5000.[46]莫芹,徐莉莉,吕贝贝.RNAi生物农药在作物保护上的应用[J].上海农业学报,2022,38(2):136-142.[47]BENNETT M,DEIKMAN J,HENDRIX B,et al.Barriers to efficient foliar uptake of dsRNA and molecular barriers to dsRNA activity in plant cells[J].Frontiers in Plant Science,2020(11):816.[48]徐翔.基于dsRNA-纳米技术的抗烟草花叶病毒RNAi药物研发及应用[D].北京:中国农业科学院,2021.[49]YAN S,REN B Y,SHEN J.Nanoparticle-mediated double-stranded RNA delivery system:A promising approach for sustainable pest management[J].Insect Science,2021,28(1):21-34.[50]李泽豪,任小元,王世兵,等.介导siRNA传递的非病毒载体及其研究进展[J].生命科学,2014,26(4):392-399.[51]包艳玲.壳聚糖季铵盐的制备及抑菌性能研究[J].化工管理,2020(14):10-11.[52]MITTER N,WORRALL E A,ROBINSON K E,et al.Clay nanosheets for topical delivery of RNAi for sustained protection against plant viruses[J].Nature Plants,2017(3):16207.[53]MITTER N,WORRALL E A,ROBINSON K E,et al.Induction of virus resistance by exogenous application of double-stranded RNA[J].Current Opinion in Virology,2017(26):49-55.[54]ZHANG S,HONG Z.Mobile RNAs:The magical elf traveling between plant and the associated organisms[J].ExRNA,2019(1):8.[55]KOCH A,KUMAR N,WEBER L,et al.Host-induced gene silencing of cytochrome P450 lanosterol C14α-demethylase-encoding genes confers strong resistance to Fusarium species[J].Poceedings of the National Academy of Sciences of the United States of America,2013,110(48):19324-19329.[56]PANWAR V,MCCALLUM B,BAKKEREN G.Endogenous silencing of Puccinia triticina pathogenicity genes through in planta-expressed sequences leads to the suppression of rust diseases on wheat[J].Plant Journal,2013,73(3):521-532.[57]ZHU X,QI T,YANG Q,et al.Host-induced gene silencing of the MAPKK gene PsFUZ7 confers stable resistance to wheat stripe rust[J].Plant Physiology,2017,175(4):1853-1863.[58]QI T,ZHU X,TAN C,et al.Host-induced gene silencing of an important pathogenicity factor PsCPK1 in Puccinia striiformis f.sp.tritici enhances resistance of wheat to stripe rust[J].Plant Biotechnology Journal,2018,16(3):797-807.[59]DEAN R,KAN J A L,PRETORIUS Z A,et al.The top 10 fungal pathogens in molecular plant pathology[J].Mol Plant Pathol,2012,13(4):414-430.[60]ZHU L,ZHU J,LIU Z,et al.Host-induced gene silencing of rice blast fungus Magnaporthe oryzae patho-genicity genes mediated by the brome mosaic virus[J].Genes,2017,8(10):241.[61]GUO X Y,LI Y,FAN J,et al.Host-induced gene silencing of MoAP1 confers broad-spectrum resistance to Magnaporthe oryzae[J].Front in Plant Science,2019(10):433.[62]WU F.Mycotoxin reduction in bt corn:Potential economic,health,and regulatory impacts[J].Transgenic Research,2006,15(3):277-289.[63]MASANGA J O,MATHEKA J M,OMER R A,et al.Downregulation of transcription factor aflR in Aspergillus flavus confers reduction to aflatoxin accumulation in transgenic maize with alteration of host plant architecture[J].Plant Cell Reports,2015,34(8):1379-1387.[64]ZHANG T,ZHAO Y L,ZHAO J H,et al.Cotton plants export microRNAs to inhibit virulence gene expression in a fungal pathogen[J].Nature Plants,2016,2(10):16153.[65]WANG M,WEIBERG A,LIN F M,et al.Bidirectional cross-kingdom RNAi and fungal uptake of external RNAs confer plant protection[J].Nature Plants,2016,2(10):16151.[66]MACHADO A K,BROWN N A,URBAN M,et al.RNAi as an emerging approach to control Fusarium head blight disease and mycotoxin contamination in cereals[J].Pest Management Science,2018,74(4):790-799.[67]QIAO L L,LAN C,CAPRIOTTI L,et al.Spray-induced gene silencing for disease control is dependent on the efficiency of pathogen RNA uptake[J].Plant Biotechnology Journal,2021,19(9):1756-1768.[68]NAITO Y,UI T K.siRNA design software for a target gene-specific RNA interference[J].Frontiers in Genetics,2012(3):102.[69]CHIBA M,REED J C,PROKHNEVSKY A I,et al.Diverse suppressors of RNA silencing enhance agroinfection by a viral replicon[J].Virology,2006,346 (1):7-14.[70]ZHU K Y,PALLI S R.Mechanisms,applications,and challenges of insect RNA interference[J].Annual Review of Entomology,2020,65:293-311.[71]ZHANG X C,ZHANG X F,SINGH J,et al.Temperature-dependent survival of Turnip crinkle virus-infected Arabidopsis plants relies on an RNA silencing-based defense that requires DCL2,AGO2,and HEN1[J].Journal of Virology,2012,86(12):6847-6854.[72]GHOSHAL B,SANFAC O H.Temperature-dependent symptom recovery in Nicotiana benthamiana plants infected with tomato ringspot virus is associated with reduced translation of viral RNA2 and requires ARGONAUTE 1[J].Virology,2014,456-457:188-197.[73]BRAMLETT M,PLAETINCK G,MAIENFISCH P.RNA-based biocontrols:A new paradigm in crop protection[J].Engineering,2020,6(5):522-527.

Memo

Memo:
-
Last Update: 2024-03-01