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Chris Greening

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Articles 113
Citations 3042
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Recent Articles
1.
Kropp A, Gillett D, Venugopal H, Gonzalvez M, Lingford J, Jain S, et al.
Nat Chem Biol . 2025 Jan; PMID: 39881213
Diverse bacteria and archaea use atmospheric CO as an energy source for long-term survival. Bacteria use [MoCu]-CO dehydrogenases (Mo-CODH) to convert atmospheric CO to carbon dioxide, transferring the obtained electrons...
2.
Li Q, Huo J, Ni G, Zhang F, Zhang S, Zhang X, et al.
Microbiome . 2025 Jan; 13(1):28. PMID: 39876003
Background: The microbes residing in ruminant gastrointestinal tracts play a crucial role in converting plant biomass to volatile fatty acids, which serve as the primary energy source for ruminants. This...
3.
Wolf P, Welsh C, Binion B, Dai H, Oliveira M, Hamm A, et al.
J Nutr . 2025 Jan; 155(3):826-838. PMID: 39805403
Background: Accumulation of hydrophobic bile acids (BAs) is linked with cancer development. However, derivatives of deoxycholic acid (DCA) and lithocholic acid (LCA) produced via bacterial metabolism may mitigate the proinflammatory...
4.
Lappan R, Chown S, French M, Perlaza-Jimenez L, Macesic N, Davis M, et al.
Environ Int . 2024 Oct; 192:109046. PMID: 39378692
Pathogenic and antimicrobial-resistant (AMR) microorganisms are continually transmitted between human, animal, and environmental reservoirs, contributing to the high burden of infectious disease and driving the growing global AMR crisis. The...
5.
Valentin-Alvarado L, Appler K, De Anda V, Schoelmerich M, West-Roberts J, Kivenson V, et al.
Nat Commun . 2024 Jul; 15(1):6384. PMID: 39085194
The roles of Asgard archaea in eukaryogenesis and marine biogeochemical cycles are well studied, yet their contributions in soil ecosystems remain unknown. Of particular interest are Asgard archaeal contributions to...
6.
Greening C, Cabotaje P, Valentin Alvarado L, Leung P, Land H, Rodrigues-Oliveira T, et al.
Cell . 2024 Jun; 187(13):3357-3372.e19. PMID: 38866018
Microbial hydrogen (H) cycling underpins the diversity and functionality of diverse anoxic ecosystems. Among the three evolutionarily distinct hydrogenase superfamilies responsible, [FeFe] hydrogenases were thought to be restricted to bacteria...
7.
Lappan R, Thakar J, Molares Moncayo L, Besser A, Bradley J, Goordial J, et al.
ISME J . 2024 May; 18(1). PMID: 38804464
The atmosphere may be Earth's largest microbial ecosystem. It is connected to all of Earth's surface ecosystems and plays an important role in microbial dispersal on local to global scales....
8.
Timmis K, Hallsworth J, McGenity T, Armstrong R, Colom M, Karahan Z, et al.
Microb Biotechnol . 2024 May; 17(5):e14456. PMID: 38801001
Executive Summary: Microbes are all pervasive in their distribution and influence on the functioning and well-being of humans, life in general and the planet. Microbially-based technologies contribute hugely to the...
9.
Ang B, Jirapanjawat T, Tay K, Ashtiani D, Greening C, Tuck K, et al.
ACS Sens . 2024 May; 9(6):3105-3114. PMID: 38753893
Rapid detection of microbes is a key feature for monitoring food quality. Unfortunately, current detection systems rely on labor-intensive and time-consuming lab-based processes that are not suitable for point-of-interest applications...
10.
Dong X, Zhang T, Wu W, Peng Y, Liu X, Han Y, et al.
Sci Adv . 2024 Apr; 10(17):eadl2281. PMID: 38669328
In deep-sea cold seeps, microbial communities thrive on the geological seepage of hydrocarbons and inorganic compounds, differing from photosynthetically driven ecosystems. However, their biosynthetic capabilities remain largely unexplored. Here, we...