Single cell whole genome amplification in optofluidic platform and sequencing assessment from the Biology and Mars Experiment (BIOMEX)

Genome sequencing of single microbial cells in low biomass settings such as in extreme conditions could lead to crucial findings in astrobiological pursuits. Typically, sequencing requires high biomass and averages over genomically heterogeneous populations, concealing the valuable information hidde...

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Main Authors: Liu, Y., Jeraldo, P., Schulze-Makuch, D., de Vera, Jean Pierre Paul, Cockell, C., Leya, Thomas, Baque, Mickael, Walther-Antonio, M.
Format: Conference Object
Language:English
Published: 2019
Subjects:
Online Access:https://elib.dlr.de/129996/
https://elib.dlr.de/129996/1/2019_AbSciCon_Abstract%5B1%5D.pdf
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author Liu, Y.
Jeraldo, P.
Schulze-Makuch, D.
de Vera, Jean Pierre Paul
Cockell, C.
Leya, Thomas
Baque, Mickael
Walther-Antonio, M.
author_facet Liu, Y.
Jeraldo, P.
Schulze-Makuch, D.
de Vera, Jean Pierre Paul
Cockell, C.
Leya, Thomas
Baque, Mickael
Walther-Antonio, M.
author_sort Liu, Y.
collection Unknown
description Genome sequencing of single microbial cells in low biomass settings such as in extreme conditions could lead to crucial findings in astrobiological pursuits. Typically, sequencing requires high biomass and averages over genomically heterogeneous populations, concealing the valuable information hidden within very few cells. Single cell whole genome sequencing is capable of identifying microbes with low representation which is often neglected or undetectable in traditional studies. It can also detect rare mutation events in single cells, which allows for mutagenic and detailed evolutionary work. In this work, we use an optofluidic platform that integrates advanced microscopy, laser tweezers and microfluidic technology to isolate single cells of Gleocapsa sp., Sphaerocystis sp. Arctic strain CCCryo 101-99 and Nostoc sp. Antarctic strain CCCryo 231-06 for whole genome amplification and sequencing to identify the genomic variation among the cells exposed to different conditions, including the ground controls (Earth), Mars simulator on Earth, and the simulated Martian condition on the International Space Station. This work presents an unparalleled study of single cell mutagenic events within a population and observation of the raw rate of mutation events that a single cell experiences under these conditions and shed light on microbial responses to space radiation.
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Liu, Y. und Jeraldo, P. und Schulze-Makuch, D. und de Vera, Jean Pierre Paul und Cockell, C. und Leya, Thomas und Baque, Mickael und Walther-Antonio, M. (2019) Single cell whole genome amplification in optofluidic platform and sequencing assessment from the Biology and Mars Experiment (BIOMEX). AbSciCon 2019, 2019-06-24 - 2019-06-28, Seattle, Washington, USA.
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spelling ftdlr:oai:elib.dlr.de:129996 2025-06-15T14:08:49+00:00 Single cell whole genome amplification in optofluidic platform and sequencing assessment from the Biology and Mars Experiment (BIOMEX) Liu, Y. Jeraldo, P. Schulze-Makuch, D. de Vera, Jean Pierre Paul Cockell, C. Leya, Thomas Baque, Mickael Walther-Antonio, M. 2019 application/pdf https://elib.dlr.de/129996/ https://elib.dlr.de/129996/1/2019_AbSciCon_Abstract%5B1%5D.pdf en eng https://elib.dlr.de/129996/1/2019_AbSciCon_Abstract%5B1%5D.pdf Liu, Y. und Jeraldo, P. und Schulze-Makuch, D. und de Vera, Jean Pierre Paul und Cockell, C. und Leya, Thomas und Baque, Mickael und Walther-Antonio, M. (2019) Single cell whole genome amplification in optofluidic platform and sequencing assessment from the Biology and Mars Experiment (BIOMEX). AbSciCon 2019, 2019-06-24 - 2019-06-28, Seattle, Washington, USA. Leitungsbereich PF Konferenzbeitrag NonPeerReviewed 2019 ftdlr 2025-06-04T04:58:07Z Genome sequencing of single microbial cells in low biomass settings such as in extreme conditions could lead to crucial findings in astrobiological pursuits. Typically, sequencing requires high biomass and averages over genomically heterogeneous populations, concealing the valuable information hidden within very few cells. Single cell whole genome sequencing is capable of identifying microbes with low representation which is often neglected or undetectable in traditional studies. It can also detect rare mutation events in single cells, which allows for mutagenic and detailed evolutionary work. In this work, we use an optofluidic platform that integrates advanced microscopy, laser tweezers and microfluidic technology to isolate single cells of Gleocapsa sp., Sphaerocystis sp. Arctic strain CCCryo 101-99 and Nostoc sp. Antarctic strain CCCryo 231-06 for whole genome amplification and sequencing to identify the genomic variation among the cells exposed to different conditions, including the ground controls (Earth), Mars simulator on Earth, and the simulated Martian condition on the International Space Station. This work presents an unparalleled study of single cell mutagenic events within a population and observation of the raw rate of mutation events that a single cell experiences under these conditions and shed light on microbial responses to space radiation. Conference Object Antarc* Antarctic Arctic Unknown Antarctic Arctic
spellingShingle Leitungsbereich PF
Liu, Y.
Jeraldo, P.
Schulze-Makuch, D.
de Vera, Jean Pierre Paul
Cockell, C.
Leya, Thomas
Baque, Mickael
Walther-Antonio, M.
Single cell whole genome amplification in optofluidic platform and sequencing assessment from the Biology and Mars Experiment (BIOMEX)
title Single cell whole genome amplification in optofluidic platform and sequencing assessment from the Biology and Mars Experiment (BIOMEX)
title_full Single cell whole genome amplification in optofluidic platform and sequencing assessment from the Biology and Mars Experiment (BIOMEX)
title_fullStr Single cell whole genome amplification in optofluidic platform and sequencing assessment from the Biology and Mars Experiment (BIOMEX)
title_full_unstemmed Single cell whole genome amplification in optofluidic platform and sequencing assessment from the Biology and Mars Experiment (BIOMEX)
title_short Single cell whole genome amplification in optofluidic platform and sequencing assessment from the Biology and Mars Experiment (BIOMEX)
title_sort single cell whole genome amplification in optofluidic platform and sequencing assessment from the biology and mars experiment (biomex)
topic Leitungsbereich PF
topic_facet Leitungsbereich PF
url https://elib.dlr.de/129996/
https://elib.dlr.de/129996/1/2019_AbSciCon_Abstract%5B1%5D.pdf