[1]

Maharachchikumbura SSN, Hyde KD, Groenewald JZ, Xu J, Crous PW. 2014. Pestalotiopsis revisited. Studies in Mycology 79:121−86

doi: 10.1016/j.simyco.2014.09.005
[2]

Wu C, Wang Y, Yang Y. 2022. Pestalotiopsis diversity: species, dispositions, secondary metabolites, and bioactivities. Molecules 27(22):8088

doi: 10.3390/molecules27228088
[3]

Zhang W, Li Y, Lin L, Jia A, Fan X. 2024. Updating the Species Diversity of Pestalotioid Fungi: Four New Species of Neopestalotiopsis and Pestalotiopsis. Journal of Fungi 10(7):475

doi: 10.3390/jof10070475
[4]

Jeewon R, Liew ECY, Hyde KD. 2002. Phylogenetic relationships of Pestalotiopsis and allied genera inferred from ribosomal DNA sequences and morphological characters. Molecular Phylogenetics and Evolution 25(3):378−92

doi: 10.1016/s1055-7903(02)00422-0
[5]

Jeewon R, Liew ECY, Simpson JA, John Hodgkiss I, Hyde KD. 2003. Phylogenetic significance of morphological characters in the taxonomy of Pestalotiopsis species. Molecular Phylogenetics and Evolution 27(3):372−83

doi: 10.1016/s1055-7903(03)00010-1
[6]

Nozawa S, Yamaguchi K, Hoang Yen LT, Van Hop D, Phay N, et al. 2017. Identification of two new species and a sexual morph from the genus Pseudopestalotiopsis. Mycoscience 58(5):328−37

doi: 10.1016/j.myc.2017.02.008
[7]

Maharachchikumbura SSN, Guo LD, Chukeatirote E, Bahkali AH, Hyde KD. 2011. Pestalotiopsis—morphology, phylogeny, biochemistry and diversity. Fungal Diversity 50(1):167−87

doi: 10.1007/s13225-011-0125-x
[8]

Corda ACJ. 1842. Icones fungorum hucusque cognitorum. Prague, Czech: JG Calve. pp. 1–92.

[9]

Hyde KD, Noorabadi MT, Thiyagaraja V, He MQ, Johnston PR, et al. 2024. The 2024 Outline of Fungi and fungus-like taxa. Mycosphere 15(1):5146−6239

doi: 10.5943/mycosphere/15/1/25
[10]

Liu AR, Chen SC, Wu SY, Xu T, Guo LD, et al. 2010. Cultural studies coupled with DNA based sequence analyses and its implication on pigmentation as a phylogenetic marker in Pestalotiopsis taxonomy. Molecular Phylogenetics and Evolution 57(2):528−35

doi: 10.1016/j.ympev.2010.07.017
[11]

Ariyawansa H. Hyde KD. 2018. Additions to Pestalotiopsis in Taiwan. Mycosphere 9(5):999−1013

doi: 10.5943/mycosphere/9/5/4
[12]

Lee Y, Kim GH, Kim Y, Park SY, Koh YJ. 2019. First report of twig dieback caused by Neopestalotiopsis clavispora on blueberry in Korea. Plant Disease 103(5):1022

doi: 10.1094/PDIS-10-18-1734-PDN
[13]

Rodríguez-Gálvez, E, Hilário, S, Lopes, A. Alves, A. 2020. Diversity and pathogenicity of Lasiodiplodia and Neopestalotiopsis species associated with stem blight and dieback of blueberry plants in Peru. European Journal of Plant Pathology 157(1):89−102

doi: 10.1007/s10658-020-01983-1
[14]

Guterres DC, Silva MA, Martins MD, Azevedo DMQ, Lisboa DO, et al. 2023. Leaf spot caused by Neopestalotiopsis species on Arecaceae in Brazil. Australasian Plant Pathology 52(1):47−62

doi: 10.1007/s13313-022-00893-6
[15]

Gerardo-Lugo SS, Tovar-Pedraza JM, Maharachchikumbura SSN, Apodaca-Sánchez MA, Correia KC, et al. 2020. Characterization of Neopestalotiopsis species associated with mango grey leaf spot disease in Sinaloa, Mexico. Pathogens 9(10):788

doi: 10.3390/pathogens9100788
[16]

Shi J, Li B, Wang S, Zhang W, Shang M, et al. 2024. Occurrence of Neopestalotiopsis clavispora causing Apple leaf spot in China. Agronomy 29;14(8):1658

doi: 10.3390/agronomy14081658
[17]

Rebollar-Alviter A, Silva-Rojas HV, Fuentes-Aragón D, Acosta-González U, Martínez-Ruiz M, et al. 2020. An emerging strawberry fungal disease associated with root rot, crown rot and leaf spot caused by Neopestalotiopsis rosae in Mexico. Plant Disease 16;104(8):2054−59

doi: 10.1094/PDIS-11-19-2493-SC
[18]

Biju CN, Peeran MF, Gowri R. 2018. Identification and characterization of Neopestalotiopsis clavispora associated with leaf blight of small cardamom (Elettaria cardamomum Maton). Journal of Phytopathology 166(7−8):532−46

doi: 10.1111/jph.12715
[19]

Shahriar SA, Nur-Shakirah AO, Mohd MH. 2022. Neopestalotiopsis clavispora and Pseudopestalotiopsis camelliae-sinensis causing grey blight disease of tea (Camellia sinensis) in Malaysia. European Journal of Plant Pathology 62:709−24

doi: 10.1007/s10658-021-02433-2
[20]

Darapanit A, Boonyuen N, Leesutthiphonchai W, Nuankaew S, Piasai O. 2021. Identification, pathogenicity and effects of plant extracts on Neopestalotiopsis and Pseudopestalotiopsis causing fruit diseases. Scientific Reports 11:22606

doi: 10.1038/s41598-021-02113-5
[21]

Baggio JS, Forcelini BB, Wang NY, Ruschel RG, Mertely JC, et al. 2021. Outbreak of leaf spot and fruit rot in Florida strawberry caused by Neopestalotiopsis spp. Plant Disease 105(2):305−15

doi: 10.1094/PDIS-06-20-1290-RE
[22]

Prasannath K, Shivas RG, Galea VJ, Akinsanmi OA. 2021. Neopestalotiopsis species associated with flower diseases of Macadamia integrifolia in Australia. Journal of Fungi 7(9):771

doi: 10.3390/jof7090771
[23]

Akinsanmi OA, Nisa S, Jeff-Ego OS, Shivas RG, Drenth A. 2017. Dry flower disease of Macadamia in Australia Caused by Neopestalotiopsis macadamiae sp. nov. and Pestalotiopsis macadamiae sp. nov. Plant Disease 101(1):45−53

doi: 10.1094/pdis-05-16-0630-re
[24]

Pornsuriya C, Chairin T, Thaochan N, Sunpapao A. 2020. Identification and characterization of Neopestalotiopsis fungi associated with a novel leaf fall disease of rubber trees (Hevea brasiliensis) in Thailand. Journal of Phytopathology 168(7−8):416−27

doi: 10.1111/jph.12906
[25]

Thaochan N, Pornsuriya C, Chairin T, Sunpapao A. 2020. Roles of systemic fungicide in antifungal activity and induced defense responses in rubber tree (Hevea brasiliensis) against leaf fall disease caused by Neopestalotiopsis cubana. Physiological and Molecular Plant Pathology 111:101511

doi: 10.1016/j.pmpp.2020.101511
[26]

Okubo-Kurihara E, Febbiyanti TR, Ashari F, Yanagawa Y, Osada E, et al. 2024. Screening of effective pesticides to control rubber tree leaf fall disease (LFD) caused by Neopestalotiopsis and Colletotrichum fungi in Indonesia. Journal of Pesticide Science 20;49(4):277−84

doi: 10.1584/jpestics.D24-020
[27]

Adikaram NKB, Maharachchikumbura SSN, Yakandawala DMD, Manawadu LN, Dissanayake DMS, et al. 2023. Postharvest stem-end browning (SEB) disease in ripe mango (Mangifera indica L.) cultivar TomEJC. European Journal of Plant Pathology 165(3):447−64

doi: 10.1007/s10658-022-02616-5
[28]

Ávila-Hernández JG, León-Ramírez CG, del Rosario Abraham-Juárez M, Tlapal-Bolaños B, Olalde-Portugal V, et al. 2025. Neopestalotiopsis spp.: a threat to strawberry production and management. Horticulturae 11(3):288

doi: 10.3390/horticulturae11030288
[29]

Thambugala KM, Hyde KD, Tanaka K, Tian Q, Wanasinghe DN, et al. 2015. Towards a natural classification and backbone tree for Lophiostomataceae, Floricolaceae, and Amorosiaceae fam. nov. Fungal Diversity 74(1):199−266

doi: 10.1007/s13225-015-0348-3
[30]

Glass NL, Donaldson GC. 1995. Development of primer sets designed for use with the PCR to amplify conserved genes from filamentous ascomycetes. Applied and Environmental Microbiology 61(4):1323−30

doi: 10.1128/aem.61.4.1323-1330.1995
[31]

White T, Bruns T, Lee S, Taylor J. 1990. Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics. PCR protocols: A Guide to Methods and Applications 18:315−22

[32]

Groenewald M, Lombard L, de Vries M, Lopez AG, Smith M, et al. 2018. Diversity of yeast species from Dutch garden soil and the description of six novel Ascomycetes. FEMS Yeast Research 18(7):foy076

doi: 10.1093/femsyr/foy076
[33]

Sun YR, Jayawardena RS, Sun JE, Wang Y. 2023. Pestalotioid species associated with medicinal plants in southwest China and Thailand. Microbiology Spectrum 11:e0398722

doi: 10.1128/spectrum.03987-22
[34]

Yang Q, Zeng XY, Yuan J, Zhang Q, He YK, et al. 2021. Two new species of Neopestalotiopsis from southern China. Biodiversity Data Journal 9:e70446

doi: 10.3897/bdj.9.e70446
[35]

Stamatakis A. 2014. RAxML version 8: a tool for phylogenetic analysis and post-analysis of large phylogenies. Bioinformatics 30(9):1312−13

doi: 10.1093/bioinformatics/btu033
[36]

Stamatakis A, Hoover P, Rougemont J. 2008. A Rapid Bootstrap Algorithm for the RAxML Web Servers. Systematic Biology 57(5):758−71

doi: 10.1080/10635150802429642
[37]

Huelsenbeck JP, Ronquist F. 2001. MRBAYES: Bayesian inference of phylogenetic trees. Bioinformatics 17(8):754−55

doi: 10.1093/bioinformatics/17.8.754
[38]

Rannala B, Yang Z. 1996. Probability distribution of molecular evolutionary trees: a new method of phylogenetic inference. Journal of Molecular Evolution 43(3):304−11

doi: 10.1007/bf02338839
[39]

Zhaxybayeva O, Gogarten JP. 2002. Bootstrap, Bayesian probability and maximum likelihood mapping: exploring new tools for comparative genome analyses. BMC Genomics 3:4

doi: 10.1186/1471-2164-3-4
[40]

Rambaut A. 2012. FigTree version 1.4.0. http://tree.bio.ed.ac.uk/software/figtree

[41]

Imtiaj A, Lee TS. 2008. Antagonistic effect of three Trichoderma species on the Alternaria porri pathogen of onion blotch. World Journal of Agricultural Sciences 4(1):13−17

[42]

Seifollahi E, de Farias ARG, Jayawardena RS, Hyde KD. 2023. Taxonomic advances from fungal flora associated with ferns and fern-like hosts in northern Thailand. Plants 12(3):683

doi: 10.3390/plants12030683
[43]

Santos J, Hilário S, Pinto G, Alves A. 2022. Diversity and pathogenicity of pestalotioid fungi associated with blueberry plants in Portugal, with description of three novel species of Neopestalotiopsis. European Journal of Plant Pathology 162(3):539−555

doi: 10.1007/s10658-021-02419-0
[44]

Bezerra JDP, Machado AR, Firmino AL, Rosado AWC, de Souza CAF, et al. 2018. Mycological diversity description I. Acta Botanica Brasilica 32(4):656−66

doi: 10.1590/0102-33062018abb0154
[45]

Anthony S, Abeywickrama K, Dayananda R, Wijeratnam S, Arambewela L. 2004. Fungal pathogens associated with banana fruit in Sri Lanka, and their treatment with essential oils. Mycopathologia 157(1):91−97

doi: 10.1023/b:myco.0000012226.95628.99
[46]

Ekanayake G, Abeywickrama K, Daranagama A, Kannangara S. 2019. Morphological characterization and molecular identification of stem-end rot associated fungal species isolated from "Karutha Colomban" mango fruits in Sri Lanka. Journal of Agricultural Sciences – Sri Lanka 14(2):120

doi: 10.4038/jas.v14i2.8514
[47]

Pandey AK, Sinniah GD, Yadav S, Maharachchikumbura SSN. 2023. Pestalotiopsis-like species: host network and lifestyle on tea crop. Fungal Biology Reviews 47:100340

doi: 10.1016/j.fbr.2023.100340
[48]

Wijayawardene NN, Hyde KD, Al-Ani LKT, Tedersoo L, Haelewaters D, et al. 2020. Outline of fungi and fungus-like taxa. Mycosphere 11(1):1060−456

doi: 10.5943/mycosphere/11/1/8
[49]

Stielow JB, Lévesque CA, Seifert KA, Meyer W, Iriny L, et al. 2015. One fungus, which genes? Development and assessment of universal primers for potential secondary fungal DNA barcodes. Persoonia - Molecular Phylogeny and Evolution of Fungi 35(1):242−63

doi: 10.3767/003158515x689135
[50]

Thambugala KM, Daranagama DA, Phillips AJL, Kannangara SD, Promputtha I, et al. 2020. Fungi vs. fungi in biocontrol: an overview of fungal antagonists applied against fungal plant pathogens. Frontiers in Cellular and Infection Microbiology 10:604923

doi: 10.3389/fcimb.2020.604923
[51]

Konara UA, Thambugala KM, Karunarathna SC, Ediriweera A, Hapuarachchi KK. 2024. Unveiling the hidden diversity of Ganoderma (Ganodermataceae, Polyporales) in Sri Lanka: the first report of G. angustisporum, G. ellipsoideum, and G. orbiforme. New Zealand Journal of Botany 18:1−25

doi: 10.1080/0028825X.2024.2415555
[52]

Thambugala K, Daranagama D, Kannangara S, Kodituwakku T. 2021. Revealing the endophytic mycoflora in tea (Camellia sinensis) leaves in Sri Lanka: the first comprehensive study. Phytotaxa 514(3):247−60

doi: 10.11646/phytotaxa.514.3.5
[53]

Norphanphoun C, Jayawardena RS, Chen Y, Wen TC, Meepol W, et al. 2019. Morphological and phylogenetic characterization of novel pestalotioid species associated with mangroves in Thailand. Mycosphere 10(1):531−578

doi: 10.5943/mycosphere/10/1/9
[54]

Kumar V, Cheewangkoon R, Gentekaki E, Maharachchikumbura SSN, Brahmanage RS, et al. 2019. Neopestalotiopsis alpapicalis sp. nov. a new endophyte from tropical mangrove trees in Krabi Province (Thailand). Phytotaxa 393(3):251−251

doi: 10.11646/phytotaxa.393.3.2
[55]

Li L, Yang Q, Li H. 2021. Morphology, phylogeny, and pathogenicity of pestalotioid species on Camellia oleifera in China. Journal of Fungi, 7(12):1080

doi: 10.3390/jof7121080
[56]

Liu X, Tibpromma S, Zhang F, Xu J, Chethana KWT, et al. 2021. Neopestalotiopsis cavernicola sp. nov. from Gem Cave in Yunnan Province, China. Phytotaxa 512(1):1−27

doi: 10.11646/phytotaxa.512.1.1
[57]

Tibpromma S, Hyde KD, McKenzie EHC, Bhat DJ, Phillips AJL, et al. 2018. Fungal diversity notes 840–928: micro-fungi associated with Pandanaceae. Fungal Diversity 93(1):1−160

doi: 10.1007/s13225-018-0408-6
[58]

Hyde KD, Hongsanan S, Jeewon R, Bhat DJ, McKenzie EHC, et al. 2016. Fungal diversity notes 367–490: taxonomic and phylogenetic contributions to fungal taxa. Fungal Diversity 80(1):1−270

doi: 10.1007/s13225-016-0373-x
[59]

Song Y, Geng K, Hyde KD, Zhao WS, Wei JG, et al. 2013. Two new species of Pestalotiopsis from Southern China. Phytotaxa 126:22

doi: 10.11646/phytotaxa.126.1.2
[60]

Ma XY, Maharachchikumbura SSN, Chen BW, Hyde KD, McKenzie EHC, et al. 2019. Endophytic pestalotiod taxa in Dendrobium orchids. Phytotaxa 419(3):268−86

doi: 10.11646/phytotaxa.419.3.2
[61]

Crous PW, Wingfield MJ, Le Roux JJ, Richardson DM, Strasberg D, et al. 2015. Fungal Planet description sheets: 371–399. Persoonia 35(1):264−327

doi: 10.3767/003158515x690269
[62]

Konta S, Tibpromma S, Karunarathna SC, Samarakoon MC, Steven LS, et al. 2023. Morphology and multigene phylogeny reveal ten novel taxa in Ascomycota from terrestrial palm substrates (Arecaceae) in Thailand. Mycosphere 14(1):107−52

doi: 10.5943/mycosphere/14/1/2
[63]

Diogo E, Gonçalves CI, Silva AC, Valente C, Bragança H, et al. 2021. Five new species of Neopestalotiopsis associated with diseased Eucalyptus spp. in Portugal. Mycological Progress 20(11):1441−56

doi: 10.1007/s11557-021-01741-5
[64]

Prematunga CJ, You LQ, Gomdola D, Balasuriya A, Yang YH, et al. 2022. An addition to pestalotioid fungi in China: Neopestalotiopsis fragariae sp. nov. causing leaf spots on Fragaria × ananassa. Asian Journal of Mycology 5(2):220−38

doi: 10.5943/ajom/5/2/10
[65]

Ul Haq I, Ijaz S, Khan NA. 2021. Genealogical concordance of phylogenetic species recognition-based delimitation of Neopestalotiopsis species associated with leaf spots and fruit canker disease affected guava plants. Pakistan Journal of Agricultural Sciences 58(04):1301−1313

doi: 10.21162/pakjas/21.1045
[66]

Freitas EFS, Da Silva M, Barros MVP, Kasuya MCM. 2019. Neopestalotiopsis hadrolaeliae sp. nov., a new endophytic species from the roots of the endangered orchid Hadrolaelia jongheana in Brazil. Phytotaxa 416(3):211−20

doi: 10.11646/phytotaxa.416.3.2
[67]

Zhang Z, Liu R, Liu S, Mu T, Zhang X, et al. 2022. Morphological and phylogenetic analyses reveal two new species of Sporocadaceae from Hainan, China. MycoKeys 88:171−92

doi: 10.3897/mycokeys.88.82229
[68]

Huanaluek N, Jayawardena RS, Maharachchikumbura SSN, Harishchandra DL. 2021. Additions to pestalotioid fungi in Thailand: Neopestalotiopsis hydeana sp. nov. and Pestalotiopsis hydei sp. nov. Phytotaxa 479(1):23−43

doi: 10.11646/phytotaxa.479.1.2
[69]

Ayoubi N, Soleimani MJ. 2016. Strawberry fruit rot caused by Neopestalotiopsis iranensis sp. nov. , and N. mesopotamica. Current Microbiology 72:329−36

doi: 10.1007/s00284-015-0955-y
[70]

Li WL, Dissanayake AJ, Zhang T, Maharachchikumbura SSN, Liu JK. 2022. Identification and pathogenicity of pestalotiod fungi associated with woody oil plants in Sichuan Province, China. Journal of Fungi 8(11):1175

doi: 10.3390/jof8111175
[71]

Crous PW, Wingfield MJ, Chooi YH, Gilchrist CLM, Lacey E, et al. 2020. Fungal Planet description sheets: 1042–1111. Persoonia - Molecular Phylogeny and Evolution of Fungi 44(1):301−459

doi: 10.3767/persoonia.2020.44.11
[72]

Lins Silvério M, de Queiroz Calvacanti MA, Alves da Silva G, Vilela de Oliveira RJ, Bezerra JL. 2016. A new epifoliar species of Neopestalotiopsis from Brazil. Agrotrópica 28(2):151−58

doi: 10.21757/0103-3816.2016v28n2p151-158
[73]

Chaiwan N, Jeewon R, Pem D, Jayawardena RS, Nazurally N, et al. 2022. Fungal Species from Rhododendron sp.: Discosia rhododendricola sp. nov, Neopestalotiopsis rhododendricola sp. nov and Diaporthe nobilis as a new host record. Journal of Fungi 8(9):907

doi: 10.3390/jof8090907
[74]

Jiang N, Bonthond G, Fan X, Tian C. 2018. Neopestalotiopsis rosicola sp. nov. causing stem canker of Rosa chinensis in China. Mycotaxon 133(2):271−83

doi: 10.5248/133.271
[75]

Fiorenza A, Gusella G, Aiello D, Polizzi G, Voglmayr H. 2022. Neopestalotiopsis siciliana sp. nov. and N. rosae Causing Stem Lesion and Dieback on Avocado Plants in Italy. Journal of Fungi 8(6):562−562

doi: 10.3390/jof8060562
[76]

Jayawardena RS, Liu M, Maharachchikumbura SSN, Zhang W, Xing Q, et al. 2016. Neopestalotiopsis vitis sp. nov. causing grapevine leaf spot in China. Phytotaxa 258(1):63−74

doi: 10.11646/phytotaxa.258.1.4
[77]

Liu XF, Tibpromma S, Hughes AC, Chethana K, Wijayawardene NN, et al. 2023. Culturable mycota on bats in central and southern Yunnan Province, China. Mycosphere 14(1):497−662

doi: 10.5943/mycosphere/14/1/7
[78]

Zhang Y, Maharachchikumbura SSN, McKenzie EHC, Hyde KD. 2012. A novel species of pestalotiopsis causing leaf spots of Trachycarpus Fortunei. Cryptogamie, Mycologie 33(3):311−18

doi: 10.7872/crym.v33.iss3.2012.311
[79]

Weerasekara IT, Udayanga D, Manamgoda DS, Mapa MST, Sinniah GD, et al. 2024. Morphological and molecular reassessment of Pseudopestalotiopsis in the gray blight complex of tea with four new species from Sri Lanka. Mycological Progress 23:72

doi: 10.1007/s11557-024-02010-x