In Vivo Entombment of Bacteria and Fungi during Calcium Oxalate, Brushite, and Struvite Urolithiasis
Author(s) -
Jessica J. Saw,
Mayandi Sivaguru,
Elena Wilson,
Yiran Dong,
Robert A. Sanford,
Christopher J. Fields,
Melissa A. Cregger,
Annette Merkel,
William J. Bruce,
Joseph R. Weber,
John C. Lieske,
Amy E. Krambeck,
Marcelino Rivera,
Timothy Large,
Dirk Lange,
Ananda S. Bhattacharjee,
Michael F. Romero,
Nicholas Chia,
Bruce W. Fouke
Publication year - 2020
Publication title -
kidney360
Language(s) - English
Resource type - Journals
ISSN - 2641-7650
DOI - 10.34067/kid.0006942020
Subject(s) - brushite , struvite , biomineralization , calcium oxalate , proteobacteria , chemistry , actinobacteria , firmicutes , mineralogy , biology , 16s ribosomal rna , calcium , oxalate , biochemistry , astrobiology , gene , inorganic chemistry , organic chemistry , phosphate
Human kidney stones form via repeated events of mineral precipitation, partial dissolution, and reprecipitation, which are directly analogous to similar processes in other natural and manmade environments, where resident microbiomes strongly influence biomineralization. High-resolution microscopy and high-fidelity metagenomic (microscopy-to-omics) analyses, applicable to all forms of biomineralization, have been applied to assemble definitive evidence of in vivo microbiome entombment during urolithiasis.
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