| Outline of Ascomycota: 2017 |
67 |
| High-level classification of the Fungi and a tool for evolutionary ecological analyses |
59 |
| The amazing potential of fungi: 50 ways we can exploit fungi industrially |
58 |
| Fungal diversity notes 929-1035: taxonomic and phylogenetic contributions on genera and species of fungi |
49 |
| Notes, outline and divergence times of Basidiomycota |
46 |
| Fungal diversity notes 709-839: taxonomic and phylogenetic contributions to fungal taxa with an emphasis on fungi on Rosaceae |
43 |
| Thailand's amazing diversity: up to 96% of fungi in northern Thailand may be novel |
41 |
| Fungal diversity notes 1036-1150: taxonomic and phylogenetic contributions on genera and species of fungal taxa |
34 |
| An online resource for marine fungi |
30 |
| Resource diversity of Chinese macrofungi: edible, medicinal and poisonous species |
29 |
| Freshwater Sordariomycetes |
27 |
| Towards a natural classification and backbone tree for Graphostromataceae, Hypoxylaceae, Lopadostomataceae and Xylariaceae |
24 |
| Species diversity, taxonomy and phylogeny of Polyporaceae (Basidiomycota) in China |
23 |
| Fungal diversity notes 840-928: micro-fungi 4associated with Pandanaceae |
17 |
| Direct comparison of culture-dependent and culture-independent molecular approaches reveal the diversity of fungal endophytic communities in stems of grapevine (Vitis vinifera) |
17 |
| Taxonomic circumscription of Diaporthales based on multigene phylogeny and morphology |
15 |
| Notes for genera: basal clades of Fungi (including Aphelidiomycota, Basidiobolomycota, Blastocladiomycota, Calcarisporiellomycota, Caulochytriomycota, Chytridiomycota, Entomophthoromycota, Glomeromycota, Kickxellomycota, Monoblepharomycota, Mortierellomycota, Mucoromycota, Neocallimastigomycota, Olpidiomycota, Rozellomycota and Zoopagomycota) |
15 |
| Families in Botryosphaeriales: a phylogenetic, morphological and evolutionary perspective |
15 |
| One stop shop II: taxonomic update with molecular phylogeny for important phytopathogenic genera: 26-50 (2019) |
15 |
| Phylogeny, ecology and taxonomy of systemic pathogens and their relatives in Ajellomycetaceae (Onygenales): Blastomyces, Emergomyces, Emmonsia, Emmonsiellopsis |
14 |
| Fungi between extremotolerance and opportunistic pathogenicity on humans |
14 |
| The world's ten most feared fungi |
14 |
| Culturable plant pathogenic fungi associated with sugarcane in southern China |
13 |
| Fungicolous fungi: terminology, diversity, distribution, evolution, and species checklist |
13 |
| Biodiversity of fungi on Vitis vinifera L. revealed by traditional and high-resolution culture-independent approaches |
12 |
| The family Amanitaceae: molecular phylogeny, higher-rank taxonomy and the species in China |
12 |
| Divergence time calibrations for ancient lineages of Ascomycota classification based on a modern review of estimations |
12 |
| The unbearable lightness of sequenced-based identification |
12 |
| A phylogenetic census of global diversity of gut anaerobic fungi and a new taxonomic framework |
11 |
| Walking the thin line ... ten years later: the dilemma of above- versus below-ground features to support phylogenies in the Russulaceae (Basidiomycota) |
10 |
| Can we use environmental DNA as holotypes? |
9 |
| Identification of fungal fossils and novel azaphilone pigments in ancient carbonised specimens of Hypoxylon fragiforme from forest soils of Chatillon-sur-Seine (Burgundy) |
9 |
| A taxonomic reassessment of Tubeufiales based on multi-locus phylogeny and morphology |
9 |
| Transient leaf endophytes are the most active fungi in 1-year-old beech leaf litter |
8 |
| A global review of the ecological significance of symbiotic associations between birds and fungi |
7 |
| Pseudoclitocybaceae fam. nov (Agaricales, Tricholomatineae), a new arrangement at family, genus and species level |
6 |
| Taxonomy and phylogeny of operculate discomycetes: Pezizomycetes |
6 |
| The quest for a globally comprehensible Russula language |
6 |
| One stop shop III: taxonomic update with molecular phylogeny for important phytopathogenic genera: 51-75 (2019) |
6 |
| Phylogenomic analysis of 2556 single-copy protein-coding genes resolves most evolutionary relationships for the major clades in the most diverse group of lichen-forming fungi |
6 |
| Taxonomy and the evolutionary history of Micropeltidaceae |
5 |
| Taxonomic revision of the genus Lactarius (Russulales, Basidiomycota) in Korea |
4 |
| Lichinodium is a new lichenized lineage in the Leotiomycetes |
2 |