Laboratory characterization of hydrothermally processed oligopeptides in ice grains emitted by Enceladus and Europa

Author:

Khawaja Nozair12ORCID,Hortal Sánchez Lucía1ORCID,O’Sullivan Thomas R.1ORCID,Bloema Judith1,Napoleoni Maryse1ORCID,Klenner Fabian3ORCID,Beinlich Andreas4ORCID,Hillier Jon1,John Timm4ORCID,Postberg Frank1ORCID

Affiliation:

1. Department of Planetary Sciences and Remote Sensing, Institut für Geologische Wissenschaften, Freie Universität Berlin , Malteserstraße, Berlin 12249, Germany

2. Institute of Space Systems, University of Stuttgart , Stuttgart 70569, Germany

3. Department of Earth and Space Sciences, University of Washington , Seattle, WA 98195, USA

4. Department of Mineralogy and Petrology, Institut für Geologische Wissenschaften, Freie Universität Berlin , Malteserstraße, Berlin 12249, Germany

Abstract

The Cassini mission provided evidence for a global subsurface ocean and ongoing hydrothermal activity on Enceladus, based on results from Cassini’s mass spectrometers. Laboratory simulations of hydrothermal conditions on icy moons are needed to further constrain the composition of ejected ice grains containing hydrothermally altered organic material. Here, we present results from our newly established facility to simulate the processing of ocean material within the temperature range 80–150°C and the pressure range 80–130 bar, representing conditions suggested for the water–rock interface on Enceladus. With this new facility, we investigate the hydrothermal processing of triglycine (GGG) peptide and, for the first time, analyse the extracted samples using laser-induced liquid beam ion desorption (LILBID) mass spectrometry, a laboratory analogue for impact ionization mass spectrometry of ice grains in space. We outline an approach to elucidate hydrothermally processed GGG in ice grains ejected from icy moons based on characteristic differences between GGG anion and cation mass spectra. These differences are linked to hydrothermal processing and thus provide a fingerprint of hydrothermal activity on extraterrestrial bodies. These results will serve as important guidelines for biosignatures potentially obtained by a future Enceladus mission and the SUrface Dust Analyzer (SUDA) instrument onboard Europa Clipper. This article is part of the theme issue ‘Dust in the Solar System and beyond’.

Publisher

The Royal Society

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Icy ocean worlds - astrobiology research in Germany;Frontiers in Astronomy and Space Sciences;2024-08-14

2. Exploring the universe through dusty visions;Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences;2024-05-13

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