Spectroscopic and Biophysical Methods to Determine Differential Salt‐Uptake by Primitive Membraneless Polyester Microdroplets

Author:

Chen Chen1ORCID,Yi Ruiqin1ORCID,Igisu Motoko2ORCID,Sakaguchi Chie3ORCID,Afrin Rehana1ORCID,Potiszil Christian3ORCID,Kunihiro Tak3,Kobayashi Katsura3ORCID,Nakamura Eizo3ORCID,Ueno Yuichiro124ORCID,Antunes André56ORCID,Wang Anna78910ORCID,Chandru Kuhan11ORCID,Hao Jihua612ORCID,Jia Tony Z.16ORCID

Affiliation:

1. Earth‐Life Science Institute Tokyo Institute of Technology Meguro‐ku Tokyo 152‐8550 Japan

2. Institute for Extra‐cutting‐edge Science and Technology Avant‐garde Research (X‐star) Japan Agency for Marine‐Earth Science and Technology (JAMSTEC) Yokosuka Kanagawa 237‐0061 Japan

3. The Pheasant Memorial Laboratory for Geochemistry and Cosmochemistry Institute for Planetary Materials Okayama University Misasa Tottori 682‐0193 Japan

4. Department of Earth and Planetary Sciences Tokyo Institute of Technology Meguro‐ku Tokyo 152‐8551 Japan

5. State Key Laboratory of Lunar and Planetary Sciences Macau University of Science and Technology (MUST) Taipa Macau SAR China

6. Blue Marble Space Institute of Science Seattle WA 98104 USA

7. School of Chemistry UNSW Sydney Sydney NSW 2052 Australia

8. Australian Centre for Astrobiology UNSW Sydney Sydney NSW 2052 Australia

9. RNA Institute UNSW Sydney Sydney NSW 2052 Australia

10. ARC Centre of Excellence for Synthetic Biology UNSW Sydney Sydney NSW 2052 Australia

11. Space Science Center (ANGKASA) Institute of Climate Change National University of Malaysia Selangor 43650 Malaysia

12. Deep Space Exploration Laboratory/CAS Laboratory of Crust‐Mantle Materials and Environments University of Science and Technology of China Hefei 230026 China

Abstract

Abstractα‐Hydroxy acids are prebiotic monomers that undergo dehydration synthesis to form polyester gels, which assemble into membraneless microdroplets upon aqueous rehydration. These microdroplets are proposed as protocells that can segregate and compartmentalize primitive molecules/reactions. Different primitive aqueous environments with a variety of salts could have hosted chemistries that formed polyester microdroplets. These salts could be essential cofactors of compartmentalized prebiotic reactions or even directly affect protocell structure. However, fully understanding polyester–salt interactions remains elusive, partially due to technical challenges of quantitative measurements in condensed phases. Here, spectroscopic and biophysical methods are applied to analyze salt uptake by polyester microdroplets. Inductively coupled plasma mass spectrometry is applied to measure the cation concentration within polyester microdroplets after addition of chloride salts. Combined with methods to determine the effects of salt uptake on droplet turbidity, size, surface potential and internal water distribution, it was observed that polyester microdroplets can selectively partition salt cations, leading to differential microdroplet coalescence due to ionic screening effects reducing electrostatic repulsion forces between microdroplets. Through applying existing techniques to novel analyses related to primitive compartment chemistry and biophysics, this study suggests that even minor differences in analyte uptake can lead to significant protocellular structural change.

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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