Floudas_2015_Fungal.Genet.Biol_76_78

Reference

Title : Evolution of novel wood decay mechanisms in Agaricales revealed by the genome sequences of Fistulina hepatica and Cylindrobasidium torrendii - Floudas_2015_Fungal.Genet.Biol_76_78
Author(s) : Floudas D , Held BW , Riley R , Nagy LG , Koehler G , Ransdell AS , Younus H , Chow J , Chiniquy J , Lipzen A , Tritt A , Sun H , Haridas S , LaButti K , Ohm RA , Kues U , Blanchette RA , Grigoriev IV , Minto RE , Hibbett DS
Ref : Fungal Genet Biol , 76 :78 , 2015
Abstract :

Wood decay mechanisms in Agaricomycotina have been traditionally separated in two categories termed white and brown rot. Recently the accuracy of such a dichotomy has been questioned. Here, we present the genome sequences of the white-rot fungus Cylindrobasidium torrendii and the brown-rot fungus Fistulina hepatica both members of Agaricales, combining comparative genomics and wood decay experiments. C. torrendii is closely related to the white-rot root pathogen Armillaria mellea, while F. hepatica is related to Schizophyllum commune, which has been reported to cause white rot. Our results suggest that C. torrendii and S. commune are intermediate between white-rot and brown-rot fungi, but at the same time they show characteristics of decay that resembles soft rot. Both species cause weak wood decay and degrade all wood components but leave the middle lamella intact. Their gene content related to lignin degradation is reduced, similar to brown-rot fungi, but both have maintained a rich array of genes related to carbohydrate degradation, similar to white-rot fungi. These characteristics appear to have evolved from white-rot ancestors with stronger ligninolytic ability. F. hepatica shows characteristics of brown rot both in terms of wood decay genes found in its genome and the decay that it causes. However, genes related to cellulose degradation are still present, which is a plesiomorphic characteristic shared with its white-rot ancestors. Four wood degradation-related genes, homologs of which are frequently lost in brown-rot fungi, show signs of pseudogenization in the genome of F. hepatica. These results suggest that transition toward a brown-rot lifestyle could be an ongoing process in F. hepatica. Our results reinforce the idea that wood decay mechanisms are more diverse than initially thought and that the dichotomous separation of wood decay mechanisms in Agaricomycotina into white rot and brown rot should be revisited.

PubMedSearch : Floudas_2015_Fungal.Genet.Biol_76_78
PubMedID: 25683379
Gene_locus related to this paper: 9agar-a0a0d6zyq5 , 9agar-a0a0d7a2p9 , 9agar-a0a0d7a2v2 , 9agar-a0a0d7abt2 , 9agar-a0a0d7acd3 , 9agar-a0a0d7acx0 , 9agar-a0a0d7acx9 , 9agar-a0a0d7adg2 , 9agar-a0a0d7a6d0 , 9agar-a0a0d7aen7 , 9agar-a0a0d7aez7 , 9agar-a0a0d7ahq5 , 9agar-a0a0d7akr6 , 9agar-a0a0d7al29 , 9agar-a0a0d7an16 , 9agar-a0a0d7ann7 , 9agar-a0a0d7anv1 , 9homo-a0a0d7atv2 , 9homo-a0a0d7ay28 , 9homo-a0a0d7ayz7 , 9homo-a0a0d7b1w8 , 9homo-a0a0d7b2p0 , 9homo-a0a0d7b4n4 , 9homo-a0a0d7b624 , 9homo-a0a0d7b7r3 , 9homo-a0a0d7b7w3 , 9homo-a0a0d7bac5 , 9homo-a0a0d7bav7 , 9homo-a0a0d7bbx7 , 9homo-a0a0d7bdn7 , 9homo-a0a0d7bgj9 , 9homo-a0a0d7biw2 , 9homo-a0a0d7bqi1 , 9homo-a0a0d7bv80 , 9agar-a0a0d7b6f6 , 9agar-a0a0d7b976 , 9agar-a0a0d7aeu9 , 9agar-a0a0d7ag53 , 9agar-a0a0d7b8a5

Related information

Gene_locus 9agar-a0a0d6zyq5    9agar-a0a0d7a2p9    9agar-a0a0d7a2v2    9agar-a0a0d7abt2    9agar-a0a0d7acd3    9agar-a0a0d7acx0    9agar-a0a0d7acx9    9agar-a0a0d7adg2    9agar-a0a0d7a6d0    9agar-a0a0d7aen7    9agar-a0a0d7aez7    9agar-a0a0d7ahq5    9agar-a0a0d7akr6    9agar-a0a0d7al29    9agar-a0a0d7an16    9agar-a0a0d7ann7    9agar-a0a0d7anv1    9homo-a0a0d7atv2    9homo-a0a0d7ay28    9homo-a0a0d7ayz7    9homo-a0a0d7b1w8    9homo-a0a0d7b2p0    9homo-a0a0d7b4n4    9homo-a0a0d7b624    9homo-a0a0d7b7r3    9homo-a0a0d7b7w3    9homo-a0a0d7bac5    9homo-a0a0d7bav7    9homo-a0a0d7bbx7    9homo-a0a0d7bdn7    9homo-a0a0d7bgj9    9homo-a0a0d7biw2    9homo-a0a0d7bqi1    9homo-a0a0d7bv80    9agar-a0a0d7b6f6    9agar-a0a0d7b976    9agar-a0a0d7aeu9    9agar-a0a0d7ag53    9agar-a0a0d7b8a5
Gene_locus_frgt 9agar-a0a0d6zyq5    9agar-a0a0d7a2p9    9agar-a0a0d7a2v2    9agar-a0a0d7abt2    9agar-a0a0d7acd3    9agar-a0a0d7acx0    9agar-a0a0d7acx9    9agar-a0a0d7adg2    9agar-a0a0d7a6d0    9agar-a0a0d7aen7    9agar-a0a0d7aez7    9agar-a0a0d7ahq5    9agar-a0a0d7akr6    9agar-a0a0d7al29    9agar-a0a0d7an16    9agar-a0a0d7ann7    9agar-a0a0d7anv1    9homo-a0a0d7atv2    9homo-a0a0d7ay28    9homo-a0a0d7ayz7    9homo-a0a0d7b1w8    9homo-a0a0d7b2p0    9homo-a0a0d7b4n4    9homo-a0a0d7b624    9homo-a0a0d7b7r3    9homo-a0a0d7b7w3    9homo-a0a0d7bac5    9homo-a0a0d7bav7    9homo-a0a0d7bbx7    9homo-a0a0d7bdn7    9homo-a0a0d7bgj9    9homo-a0a0d7biw2    9homo-a0a0d7bqi1    9homo-a0a0d7bv80    9agar-a0a0d7b6f6    9agar-a0a0d7b976    9agar-a0a0d7aeu9    9agar-a0a0d7ag53    9agar-a0a0d7b8a5    9agar-a0a0d7amh1    9homo-a0a0d7aur1    9homo-a0a0d7avy5    9homo-a0a0d7awj1    9homo-a0a0d7b9n9    9homo-a0a0d7bau2    9homo-a0a0d7bck5    9homo-a0a0d7bxp1

Citations formats

Floudas D, Held BW, Riley R, Nagy LG, Koehler G, Ransdell AS, Younus H, Chow J, Chiniquy J, Lipzen A, Tritt A, Sun H, Haridas S, LaButti K, Ohm RA, Kues U, Blanchette RA, Grigoriev IV, Minto RE, Hibbett DS (2015)
Evolution of novel wood decay mechanisms in Agaricales revealed by the genome sequences of Fistulina hepatica and Cylindrobasidium torrendii
Fungal Genet Biol 76 :78

Floudas D, Held BW, Riley R, Nagy LG, Koehler G, Ransdell AS, Younus H, Chow J, Chiniquy J, Lipzen A, Tritt A, Sun H, Haridas S, LaButti K, Ohm RA, Kues U, Blanchette RA, Grigoriev IV, Minto RE, Hibbett DS (2015)
Fungal Genet Biol 76 :78