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Items: 24

1.

Comparison of Bacillus subtilis transcriptome profiles from two separate missions to the International Space Station.

Morrison MD, Fajardo-Cavazos P, Nicholson WL.

NPJ Microgravity. 2019 Jan 7;5:1. doi: 10.1038/s41526-018-0061-0. eCollection 2019.

2.

Transcriptomic responses of Serratia liquefaciens cells grown under simulated Martian conditions of low temperature, low pressure, and CO2-enriched anoxic atmosphere.

Fajardo-Cavazos P, Morrison MD, Miller KM, Schuerger AC, Nicholson WL.

Sci Rep. 2018 Oct 8;8(1):14938. doi: 10.1038/s41598-018-33140-4.

3.

Alterations in the Spectrum of Spontaneous Rifampicin-Resistance Mutations in the Bacillus subtilis rpoB Gene after Cultivation in the Human Spaceflight Environment.

Fajardo-Cavazos P, Leehan JD, Nicholson WL.

Front Microbiol. 2018 Feb 14;9:192. doi: 10.3389/fmicb.2018.00192. eCollection 2018.

4.

Cultivation in Space Flight Produces Minimal Alterations in the Susceptibility of Bacillus subtilis Cells to 72 Different Antibiotics and Growth-Inhibiting Compounds.

Morrison MD, Fajardo-Cavazos P, Nicholson WL.

Appl Environ Microbiol. 2017 Oct 17;83(21). pii: e01584-17. doi: 10.1128/AEM.01584-17. Print 2017 Nov 1.

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Evolution in the Bacillaceae.

Fajardo-Cavazos P, Maughan H, Nicholson WL.

Microbiol Spectr. 2014 Oct;2(5). doi: 10.1128/microbiolspec.TBS-0020-2014. Review.

PMID:
26104365
7.

Complete Genome Sequence of Serratia liquefaciens Strain ATCC 27592.

Nicholson WL, Leonard MT, Fajardo-Cavazos P, Panayotova N, Farmerie WG, Triplett EW, Schuerger AC.

Genome Announc. 2013 Aug 15;1(4). pii: e00548-13. doi: 10.1128/genomeA.00548-13.

8.

Evolution of Bacillus subtilis to enhanced growth at low pressure: up-regulated transcription of des-desKR, encoding the fatty acid desaturase system.

Fajardo-Cavazos P, Waters SM, Schuerger AC, George S, Marois JJ, Nicholson WL.

Astrobiology. 2012 Mar;12(3):258-70. doi: 10.1089/ast.2011.0728. Epub 2012 Mar 14.

PMID:
22416764
9.

Exploring the low-pressure growth limit: evolution of Bacillus subtilis in the laboratory to enhanced growth at 5 kilopascals.

Nicholson WL, Fajardo-Cavazos P, Fedenko J, Ortíz-Lugo JL, Rivas-Castillo A, Waters SM, Schuerger AC.

Appl Environ Microbiol. 2010 Nov;76(22):7559-65. doi: 10.1128/AEM.01126-10. Epub 2010 Oct 1.

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Bacterial spores in granite survive hypervelocity launch by spallation: implications for lithopanspermia.

Fajardo-Cavazos P, Langenhorst F, Melosh HJ, Nicholson WL.

Astrobiology. 2009 Sep;9(7):647-57. doi: 10.1089/ast.2008.0326.

PMID:
19778276
12.

Persistence of biomarker ATP and ATP-generating capability in bacterial cells and spores contaminating spacecraft materials under earth conditions and in a simulated martian environment.

Fajardo-Cavazos P, Schuerger AC, Nicholson WL.

Appl Environ Microbiol. 2008 Aug;74(16):5159-67. doi: 10.1128/AEM.00891-08. Epub 2008 Jun 20.

14.

Bacillus subtilis spores on artificial meteorites survive hypervelocity atmospheric entry: implications for Lithopanspermia.

Fajardo-Cavazos P, Link L, Melosh HJ, Nicholson WL.

Astrobiology. 2005 Dec;5(6):726-36.

PMID:
16379527
15.

Essential cysteine residues in Bacillus subtilis spore photoproduct lyase identified by alanine scanning mutagenesis.

Fajardo-Cavazos P, Rebeil R, Nicholson WL.

Curr Microbiol. 2005 Nov;51(5):331-5. Epub 2005 Sep 16.

PMID:
16163454
16.

Bacterial endospores and their significance in stress resistance.

Nicholson WL, Fajardo-Cavazos P, Rebeil R, Slieman TA, Riesenman PJ, Law JF, Xue Y.

Antonie Van Leeuwenhoek. 2002 Aug;81(1-4):27-32. Review.

PMID:
12448702
17.

Temporal secretion of a multicellulolytic system in Myxobacter sp. AL-1. Molecular cloning and heterologous expression of cel9 encoding a modular endocellulase clustered in an operon with cel48, an exocellobiohydrolase gene.

Avitia CI, Castellanos-Juárez FX, Sánchez E, Téllez-Valencia A, Fajardo-Cavazos P, Nicholson WL, Pedraza-Reyes M.

Eur J Biochem. 2000 Dec;267(24):7058-64.

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