Moran NA, McCutcheon JP, Nakabachi A. Genomics and evolution of heritable bacterial symbionts. Annu Rev Genet. 2008;42:165–90.
Google Scholar
Bourguignon T, Lo N, Dietrich C, Roisin Y, Brune A, Evans TA, et al. Rampant host switching shaped the termite gut microbiome. Curr Biol. 2018;28:649–54.
Google Scholar
Matsuura Y, Moriyama M, Łukasik P, Vanderpool D, Tanahashi M, Meng X. Recurrent symbiont recruitment from fungal parasites in cicadas. Proc Natl Acad Sci USA. 2018;115:E5970–9.
Google Scholar
Chong RA, Moran NA. Evolutionary loss and replacement of Buchnera, the obligate endosymbiont of aphids. ISME J. 2018;12:898–908.
Google Scholar
Bennett GM, Moran NA. Heritable symbiosis: the advantages and perils of an evolutionary rabbit hole. Proc Natl Acad Sci USA. 2015;112:10169–76.
Google Scholar
Sudakaran S, Kost C, Kaltenpoth M. Symbiont acquisition and replacement as a source of ecological innovation. Trends Microbiol. 2017;25:1–16.
Google Scholar
Martinson VG, Danforth BN, Minckley RL, Rueppell O, Tingek S, Moran NA. A simple and distinctive microbiota associated with honey bees and bumble bees. Mol Ecol. 2011;20:619–28.
Google Scholar
Kwong WK, Medina LA, Koch H, Sing KW, Soh EJY, Ascher JS, et al. Dynamic microbiome evolution in social bees. Sci Adv. 2017;3:1–17.
Google Scholar
Kwong WK, Moran NA. Gut microbial communities of social bees. Nat Rev Microbiol. 2016;14:374–84.
Google Scholar
Rothman JA, Leger L, Graystock P, Russell K, McFrederick QS. The bumble bee microbiome increases survival of bees exposed to selenate toxicity. Environ Microbiol. 2019;21:3417–29.
Google Scholar
Koch H, Schmid-Hempel P. Socially transmitted gut microbiota protect bumble bees against an intestinal parasite. Proc Natl Acad Sci USA. 2011;108:19288–92.
Google Scholar
Zheng H, Powell JE, Steele MI, Dietrich C, Moran NA. Honeybee gut microbiota promotes host weight gain via bacterial metabolism and hormonal signaling. Proc Natl Acad Sci USA. 2017;114:4775–80.
Google Scholar
Mockler BK, Kwong WK, Moran NA, Koch H. Microbiome structure influences infection by the parasite Crithidia bombi in bumble bees. Appl Environ Microbiol. 2018;84:1–11.
Google Scholar
Giannini TCG, Boff S, Cordeiro GD, Cartonalo EA Jr, Veiga AK, Imperatriz-Fonseca VL, et al. Crop pollinators in Brazil: a review of reported interactions. Apidologie. 2015;46:209–23.
Google Scholar
Koch H, Abrol DP, Li J, Schmid-Hempel P. Diversity and evolutionary patterns of bacterial gut associates of corbiculate bees. Mol Ecol. 2013;22:2028–44.
Google Scholar
Leonhardt SD, Kaltenpoth M. Microbial communities of three sympatric Australian stingless bee species. PLoS One. 2014;9:1–6.
Google Scholar
Díaz S, de Souza Urbano S, Caesar L, Blochtein B, Sattler A, Zuge V, et al. Report on the microbiota of Melipona quadrifasciata affected by a recurrent disease. J Invertebr Pathol. 2017;143:35–39.
Google Scholar
Teixeira ACP, Marini MM, Nicoli JR, Antonini Y, Martins RP, Lachance M-A, et al. Starmerella meliponinorum sp. nov., a novel ascomycetous yeast species associated with stingless bees. Int J Syst Evol Microbiol. 2003;53:339–43.
Google Scholar
Paludo CR, Menezes C, Silva-Junior EA, Vollet-Neto A, Andrade-Dominguez A, Pishchany G, et al. Stingless bee larvae require fungal steroid to pupate. Sci Rep. 2018;8:1–10.
Google Scholar
Ramírez SR, Nieh JC, Quental TB, Roubik DW, Imperatriz-Fonseca VL, Pierce NE. A molecular phylogeny of the stingless bee genus Melipona (Hymenoptera: Apidae). Mol Phylogenet Evol. 2010;56:519–25.
Google Scholar
Source: Ecology - nature.com