Hydrothermal Microflow Technology as a Research Tool for Origin-of-Life Studies in Extreme Earth Environments

Although studies about the origin of life are a frontier in science and a number of effective approaches have been developed, drawbacks still exist. Examples include: (1) simulation of chemical evolution experiments (which were demonstrated for the first time by Stanley Miller); (2) approaches traci...

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Main Author: Kunio Kawamura
Format: Article
Language:English
Published: MDPI AG 2017-10-01
Series:Life
Subjects:
RNA
Online Access:https://www.mdpi.com/2075-1729/7/4/37
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spelling doaj-4666c6710364417e9ab5990199c2233c2020-11-25T00:53:14ZengMDPI AGLife2075-17292017-10-01743710.3390/life7040037life7040037Hydrothermal Microflow Technology as a Research Tool for Origin-of-Life Studies in Extreme Earth EnvironmentsKunio Kawamura0Department of Human Environmental Studies, Hiroshima Shudo University, Ozuka-higashi, Asaminami-ku, Hiroshima 731-3195, JapanAlthough studies about the origin of life are a frontier in science and a number of effective approaches have been developed, drawbacks still exist. Examples include: (1) simulation of chemical evolution experiments (which were demonstrated for the first time by Stanley Miller); (2) approaches tracing back the most primitive life-like systems (on the basis of investigations of present organisms); and (3) constructive approaches for making life-like systems (on the basis of molecular biology), such as in vitro construction of the RNA world. Naturally, simulation experiments of chemical evolution under plausible ancient Earth environments have been recognized as a potentially fruitful approach. Nevertheless, simulation experiments seem not to be sufficient for identifying the scenario from molecules to life. This is because primitive Earth environments are still not clearly defined and a number of possibilities should be taken into account. In addition, such environments frequently comprise extreme conditions when compared to the environments of present organisms. Therefore, we need to realize the importance of accurate and convenient experimental approaches that use practical research tools, which are resistant to high temperature and pressure, to facilitate chemical evolution studies. This review summarizes improvements made in such experimental approaches over the last two decades, focusing primarily on our hydrothermal microflow reactor technology. Microflow reactor systems are a powerful tool for performing simulation experiments in diverse simulated hydrothermal Earth conditions in order to measure the kinetics of formation and degradation and the interactions of biopolymers.https://www.mdpi.com/2075-1729/7/4/37hydrothermalreaction kineticsin situ spectroscopymillisecond time scaleRNAproteinmineralhigh temperature and pressureHadean environment
collection DOAJ
language English
format Article
sources DOAJ
author Kunio Kawamura
spellingShingle Kunio Kawamura
Hydrothermal Microflow Technology as a Research Tool for Origin-of-Life Studies in Extreme Earth Environments
Life
hydrothermal
reaction kinetics
in situ spectroscopy
millisecond time scale
RNA
protein
mineral
high temperature and pressure
Hadean environment
author_facet Kunio Kawamura
author_sort Kunio Kawamura
title Hydrothermal Microflow Technology as a Research Tool for Origin-of-Life Studies in Extreme Earth Environments
title_short Hydrothermal Microflow Technology as a Research Tool for Origin-of-Life Studies in Extreme Earth Environments
title_full Hydrothermal Microflow Technology as a Research Tool for Origin-of-Life Studies in Extreme Earth Environments
title_fullStr Hydrothermal Microflow Technology as a Research Tool for Origin-of-Life Studies in Extreme Earth Environments
title_full_unstemmed Hydrothermal Microflow Technology as a Research Tool for Origin-of-Life Studies in Extreme Earth Environments
title_sort hydrothermal microflow technology as a research tool for origin-of-life studies in extreme earth environments
publisher MDPI AG
series Life
issn 2075-1729
publishDate 2017-10-01
description Although studies about the origin of life are a frontier in science and a number of effective approaches have been developed, drawbacks still exist. Examples include: (1) simulation of chemical evolution experiments (which were demonstrated for the first time by Stanley Miller); (2) approaches tracing back the most primitive life-like systems (on the basis of investigations of present organisms); and (3) constructive approaches for making life-like systems (on the basis of molecular biology), such as in vitro construction of the RNA world. Naturally, simulation experiments of chemical evolution under plausible ancient Earth environments have been recognized as a potentially fruitful approach. Nevertheless, simulation experiments seem not to be sufficient for identifying the scenario from molecules to life. This is because primitive Earth environments are still not clearly defined and a number of possibilities should be taken into account. In addition, such environments frequently comprise extreme conditions when compared to the environments of present organisms. Therefore, we need to realize the importance of accurate and convenient experimental approaches that use practical research tools, which are resistant to high temperature and pressure, to facilitate chemical evolution studies. This review summarizes improvements made in such experimental approaches over the last two decades, focusing primarily on our hydrothermal microflow reactor technology. Microflow reactor systems are a powerful tool for performing simulation experiments in diverse simulated hydrothermal Earth conditions in order to measure the kinetics of formation and degradation and the interactions of biopolymers.
topic hydrothermal
reaction kinetics
in situ spectroscopy
millisecond time scale
RNA
protein
mineral
high temperature and pressure
Hadean environment
url https://www.mdpi.com/2075-1729/7/4/37
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