Mark E J Woolhouse
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Explore the profile of Mark E J Woolhouse including associated specialties, affiliations and a list of published articles.
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118
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3678
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Recent Articles
1.
Morgan A, Woolhouse M, Wagenaar J, van Bunnik B
One Health
. 2023 Nov;
17:100639.
PMID: 38024252
Antibiotic usage in livestock has been suggested as a driver of antimicrobial resistance in human and livestock populations. This has contributed to the implementation of stewardship programs to curtail usage...
2.
Lepper H, Perry M, Wee B, Wills D, Nielsen H, Otani S, et al.
Sci Total Environ
. 2023 Aug;
902:165978.
PMID: 37544442
The wastewater microbiome contains a multitude of resistant bacteria of human origin, presenting an opportunity for surveillance of resistance in the general population. However, wastewater microbial communities are also influenced...
3.
Hassell J, Muloi D, VanderWaal K, Ward M, Bettridge J, Gitahi N, et al.
Proc Natl Acad Sci U S A
. 2023 Jul;
120(29):e2218860120.
PMID: 37450494
Urbanization is predicted to be a key driver of disease emergence through human exposure to novel, animal-borne pathogens. However, while we suspect that urban landscapes are primed to expose people...
4.
Muloi D, Hassell J, Wee B, Ward M, Bettridge J, Kivali V, et al.
BMC Med
. 2022 Dec;
20(1):471.
PMID: 36482440
Background: Livestock systems have been proposed as a reservoir for antimicrobial-resistant (AMR) bacteria and AMR genetic determinants that may infect or colonise humans, yet quantitative evidence regarding their epidemiological role...
5.
Lepper H, Woolhouse M, van Bunnik B
Antibiotics (Basel)
. 2022 Oct;
11(10).
PMID: 36290019
Antibiotic resistance is transmitted between animals and humans either directly or indirectly, through transmission via the environment. However, little is known about the contribution of the environment to resistance epidemiology....
6.
Zhang F, Chase-Topping M, Guo C, Woolhouse M
Elife
. 2022 Jun;
11.
PMID: 35666108
Background: The variation in the pathogen type as well as the spatial heterogeneity of predictors make the generality of any associations with pathogen discovery debatable. Our previous work confirmed that...
7.
Muloi D, Wee B, McClean D, Ward M, Pankhurst L, Phan H, et al.
Nat Microbiol
. 2022 Mar;
7(4):581-589.
PMID: 35288654
Quantitative evidence for the risk of zoonoses and the spread of antimicrobial resistance remains lacking. Here, as part of the UrbanZoo project, we sampled Escherichia coli from humans, livestock and...
8.
Perry M, Lepper H, McNally L, Wee B, Munk P, Warr A, et al.
Front Microbiol
. 2021 Sep;
12:703560.
PMID: 34566912
Hospital wastewater is a major source of antimicrobial resistance (AMR) outflow into the environment. This study uses metagenomics to study how hospital clinical activity impacts antimicrobial resistance genes (ARGs) abundances...
9.
Zhang F, Karamagi H, Nsenga N, Nanyunja M, Karinja M, Amanfo S, et al.
Nat Med
. 2021 Sep;
27(11):2041-2047.
PMID: 34480125
Countries of the World Health Organization (WHO) African Region have experienced a wide range of coronavirus disease 2019 (COVID-19) epidemics. This study aimed to identify predictors of the timing of...
10.
van Bunnik B, Morgan A, Bessell P, Calder-Gerver G, Zhang F, Haynes S, et al.
Philos Trans R Soc Lond B Biol Sci
. 2021 May;
376(1829):20200275.
PMID: 34053266
This study demonstrates that an adoption of a segmenting and shielding strategy could increase the scope to partially exit COVID-19 lockdown while limiting the risk of an overwhelming second wave...