Please use this identifier to cite or link to this item: https://ptsldigital.ukm.my/jspui/handle/123456789/784532
Full metadata record
DC FieldValueLanguage
dc.rights.licenseTertakluk kepada Dasar Akses Terbuka Tesis dan Disertasi IPT Malaysiaen_US
dc.contributor.advisorKuhan Chandru Balasanthiran, Dr.en_US
dc.contributor.advisorJalifah Latip, Assoc. Prof. Dr.en_US
dc.contributor.advisorTony Jia, Prof. Dr.en_US
dc.contributor.advisorDaniel Law Xian, Dr.en_US
dc.contributor.advisorAhmad Daniel, Dr.en_US
dc.contributor.authorMahendran Sithamparamen_US
dc.date.accessioned2026-08-20T03:25:47Z-
dc.date.available2026-08-20T03:25:47Z-
dc.date.issued2025-07-22-
dc.identifier.otherP111897en_US
dc.identifier.urihttps://ptsldigital.ukm.my/jspui/handle/123456789/784532-
dc.description.abstractThe study of prebiotic polymerization is important to understand the possibility of formation of early compartment, which could lead to become protocell, for prebiotic chemistry to take place. Alpha-hydroxy acids (AHA), a class of prebiotically relevant compounds, undergo polymerization through simple dehydration processes. Upon rehydration, these polymers form membraneless microdroplets (MMD) via phase separation, exhibiting protocell-like properties such as material encapsulation, exchange, motion, coalescence, and evolution into membrane-bound droplets. Despite their astrobiological relevance, key aspects of AHA polymer stability under early Earth conditions remain poorly understood. Specifically, the effects of low aqueous volume, low monomer concentration, and high salinity on polymer formation and MMD assembly have not been thoroughly explored, limiting the understanding of their role in protocell development and the origins of life (OoL). This study investigates the synthesis of phenyllactic acid (PA) and lactic acid (LA) into polymeric gels as prebiotic candidates under dehydration until complete dryness at low concentrations, small reaction volumes, and varying salinities to simulate early Earth conditions. Additionally, their resilience to prebiotic stressors was assessed by gamma-ray radiation exposure to evaluate stability under early Earth conditions and potential material-based Panspermia transfers. Gamma-ray radiation exposure demonstrates the robustness of PA and LA polymer gels to support their viability in extreme environments. Individual analyses of mass spectrometry and microscopy confirmed polymerization of LA and PA at 1 mM, 5 µL and high salinity of 1 M and the subsequent formation of MMDs. These analyses also showed that polyPA and polyLA were robust under 181 kGy of gamma-ray radiation and still able to form MMD. These findings provided insights into prebiotic polymerization and MMD formation under geochemically relevant conditions, contributing to our understanding of the OoL on early Earth and the possibility of interplanetary transport through Panspermia.en_US
dc.language.isoenen_US
dc.publisherUKM, Bangien_US
dc.relationInstitute of Climate Change / Institut Perubahan Iklimen_US
dc.rightsTerhad/Restricteden_US
dc.subjectPolymerizationen_US
dc.subjectLactic aciden_US
dc.subjectMolecular evolutionen_US
dc.subjectUniversiti Kebangsaan Malaysia -- Dissertationsen_US
dc.subjectDissertations, Academic -- Malaysiaen_US
dc.titlePrebiotic polymer synthesis of lactic and phenyllactic acids under early earth aqueous conditions and their stability against gamma radiationen_US
dc.typeThesesen_US
dc.rights.holderUniversiti Kebangsaan Malaysiaen_US
dc.description.notesTesis ini tidak ada "Perakuan Tesis Sarjana/Doktor Falsafah"en_US
dc.format.pages136en_US
dc.identifier.callnoTP156.P6S568 2025 tesisen_US
dc.identifier.barcode007927en_US
dc.format.degreePh. Den_US
dc.description.categoryofthesesTerhad/Restricteden_US
Appears in Collections:Institute of Climate Change / Institut Perubahan Iklim



Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.