Home India Ministry of Science and Technology Decoding Ladakh's hot springs could help trace the origins o...
Date: 2025-07-29 Category: Not Applicable State: Union Government Country: India

Decoding Ladakh's hot springs could help trace the origins of life on early Earth and Mars

Issued by Ministry of Science and Technology · Not Applicable

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**Summary:** A team of Indian scientists from the Birbal Sahni Institute of Palaeosciences (BSIP), an autonomous institute of the Department of Science and Technology (DST), has made a significant discovery in the Puga valley of Ladakh, India, concerning the origins of life and its potential relevance to astrobiology. The research, executed under BSIP's Earth and Planetary Exploration Group (EPEG), focuses on the geothermal activity and hot springs in the high-altitude Puga valley. The team, led by Dr. Amritpal Singh Chaddha, Dr. Sunil Kumar Shukla, Dr. Anupam Sharma, Prof. M.G. Thakkar, and Dr. Kamlesh Kumar, investigated rapid carbonate precipitation in the area, hypothesizing that the extreme environment could serve as a prebiotic reactor and preservation site. The interdisciplinary study analyzed high-altitude hot spring travertine (calcium carbonate deposit) from Puga using various techniques, including microscopy, GCMSMS, Raman, XRD, IR, and stable isotope geochemistry. The analysis revealed preserved amino acid derivatives, formamide, sulphur compounds, and fatty acids encapsulated within calcite. These findings suggest that calcium carbonate plays a role in concentrating and stabilizing organic precursors. The research indicates that natural travertine from the Puga Hot Spring can trap and preserve prebiotic organic molecules, highlighting CaCO3 as a potential natural template for origin-of-life chemistry under extreme Earth-like conditions. Published in ACS Earth and Space Chemistry, the study provides a plausible mechanism for travertine formation and organic molecule preservation, particularly relevant to early Earth environments with high UV radiation. The findings offer insights into the origins of life on Earth and could aid future planetary exploration, such as on Mars, by improving the identification of biosignatures. The research may also contribute to ISRO's future space exploration missions and enhance the understanding of natural biomolecule preservation mechanisms, potentially influencing the development of new materials and life-detection technologies in astrobiology and synthetic biology.

Key Entities Referenced

Ministry of Science Technology: The Indian government ministry responsible for science and technology policy and administration. Ladakh, India: A region in India known for its high-altitude valleys and geothermal activity, specifically the location of the Puga valley hot springs. Puga valley: A high-altitude valley in Ladakh, India, known for its geothermal activity and hot springs, the location of the study. Earth: The planet on which life originated, and the focus of the study regarding the origins of life. Mars: A planetary body and target for astrobiological exploration, mentioned in the context of finding biosignatures of life. Birbal Sahni Institute of Palaeosciences BSIP: An autonomous institute of the Department of Science and Technology DST, involved in the study of the Puga valley hot springs. Department of Science and Technology DST: The Indian government department to which the Birbal Sahni Institute of Palaeosciences (BSIP) is affiliated. ISRO: The Indian Space Research Organisation, mentioned in connection to future space exploration missions and biosignature identification.
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Ministry of Science & Technology Decoding Ladakh's hot springs could help trace the origins of life on early Earth and Mars Posted On: 29 JUL 2025 5:39PM by PIB Delhi In the icy high-altitude valleys of Ladakh, India, a natural hot spring in Puga valley may be holding secrets from the very dawn of life on Earth. A team of Indian scientists has made a breakthrough discovery that could not only rewrite our understanding of how life may have originated on Earth and shedding light on how astrobiological process related to finding biosignatures of life on other planetary bodies like MARS may have occurred. Till date Silica based origin of life theories are proposed globally and role of carbonates specifically Ca has been unexplored. Prior studies showed calcite can catalyse prebiotic reactions in laboratory settings. Scientists from Birbal Sahni Institute of Palaeosciences (BSIP) an autonomous institute of the Department of Science and Technology (DST) observed rapid carbonate precipitation in the environment of Puga valley, a high-altitude valley in Ladakh, India, known for its geothermal activity and hot springs. This Project was executed under newly formed Earth and Planetary Exploration Group (EPEG) at BSIP.Fig 1. Conceptual model of travertine formation and geochemical record at the Puga hot spring, Ladakh. ­­­­­­­­­­­Dr. Amritpal Singh Chaddha, Dr. Sunil Kumar Shukla, Dr. Anupam Sharma, Prof. M.G. Thakkar, Dr. Kamlesh Kumar hypothesised that the extreme environment of Puga could act as a real­world prebiotic reactor and preservation site and provide real world evidence of the phenomenon. In an interdisciplinary study, the team analysed the high­altitude hot spring travertine (calcium carbonate deposit) from Puga using a combination of techniques based on inorganic and organic geochemistry including microscopy, GC­MS­MS, Raman, XRD, IR, and stable isotope geochemistry. These revealed preserved amino acid derivatives, formamide, sulphur compounds, and fatty acids encapsulated within calcite, supporting its role in concentrating and stabilizing organic precursors. Lead author Dr. Chaddha says that the “Empirical evidences suggest that the natural travertine from the Puga Hot Spring in Ladakh can trap and preserve prebiotic organic molecules, highlightingCaCO as a potential 3 natural template for origin­of­life chemistry under extreme Earth­like conditions”. The study published in ACS Earth and Space Chemistry provides plausible mechanism of travertine formation and how organic molecules may have preserved and triggered life where there was presence of high UV in the early Earth environment. The findings provide insight into how life may have originated on Earth, aiding future planetary exploration (e.g., Mars). It could aid to ISROs future space exploration missions where identification of true biosignatures is required for identifying life and its associated biogeochemical process. It also enhances understanding of natural biomolecule preservation mechanisms, which may influence the development of new materials and life­detection technologies in astrobiology and synthetic biology. *** NKR/PSM (Release ID: 2149826)

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