biology and biotechnology

(やまだぃちぅ) #1

Microbe-I/II Ichijo T, Hieda H, Ishihara R, Yamaguchi N, Nasu
M. Bacterial monitoring with adhesive sheet in
the International Space Station "Kibo", the
Japanese experiment module. Microbes and
Environments. April 20, 2013;28(2):264-268.
doi: 10.1264/jsme2.ME12184.


JAXA


Microbe-I/II Satoh K, Nishiyama Y, Yamazaki TQ, et al.
Microbe-I: Fungal biota analyses of Japanese
experimental module “Kibo,” International
Space Station which passed for about four
hundred sixty days. Microbiology and
Immunology. December 2011;55(2):823-829.
doi: 10.1111/j.1348-0421.2011.00386.x.


JAXA


Microspace Canganella F, Bianconi G. Survival of
microorganisms representing the three domains
of life inside the International Space Station.
Microgravity Science and Technology.
2007;19(5-6):148-153. doi:
10.1007/BF02919471.


ESA


POEMS Roberts MS, Reed DW, Rodriguez JI. Passive
observatories for experimental microbial
systems (POEMS): Microbes return to flight.
34th International Conference on Environmental
Systems, Colorado, Springs, CO; July 2005.


NASA


Yeast-GAP Coleman CB, Allen PL, Rupert M, et al. Novel
Sfp1 transcriptional regulation of
Saccharomyces cerevisiae gene expression
changes during spaceflight. Astrobiology.
2008;8(6):1071-1078. doi:
10.1089/ast.2007.0 211.


NASA


Yeast-GAP Johanson K, Allen PL, Gonzalez-Villaobos RA, et
al. Haploid deletion strains of Saccharomyces
cerevisiae that determine survival during
spaceflight. Acta Astronautica. 2007;60(4-
7):460-471. doi:
10.1016/j.actaastro.2006.09.011.


NASA


YING-A: Part 1 Van Mulders SE, Stassen C, Daenen L, et al. The
influence of microgravity on invasive growth in
Saccharomyces cerevisiae. Astrobiology.
2011;11(1):45-55. doi: 10.1089/ast.2010.0518.


ESA

Free download pdf