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Tharu, M. K.

Publications and source records attributed to Tharu, M. K..

2 recordsLinked to original sources

Holocene North Asian gene flow and cryptic substructure in the genome history of Nilgiri tribes

The Nilgiri Hills of the Western Ghats harbour several historically isolated tribal populations whose genomic history remains incompletely resolved. Here, we present a comprehensive analysis of whole genome and complete mitochondrial data from three major Nilgiri groups i.,e, Toda, Kota, and Kurumba, in the context of a broad Eurasian reference panel. Autosomal analyses reveal previously unrecognised fine scale substructure, with both Kota and Kurumba resolving into two genetically distinct clusters (Kota1/Kota2 and Kurumba1/Kurumba2). Principal component, ADMIXTURE, and fineSTRUCTURE analyses identify Toda as the most genetically drifted Nilgiri group, whereas Kota2 exhibits elevated Austroasiatic related ancestry. qpWave analysis indicates that the five genetic clusters require at least three independent ancestry streams, while qpAdm further differentiates the groups based on Onge, Indus Periphery, and Western SteppeMLBA related ancestry. Toda shows the highest Indus Periphery related and lowest Onge related ancestry among the Nilgiri groups. A distinctive ancestry component shared by Kurumba2, Kota1, Gaud and the Sri Lankan Vedda suggests deeper ancestral connections across the southern Indian Ocean region. Mitochondrial genomes reveal strong founder effects and lineage specific patterns, including R5a2b in Toda, M3a1 in Kota, and multiple M subclades together with the rare C4a2c1 lineage in Kurumba. Notably, C4a2c1, previously understudied in South India, shows phylogenetic and ancient DNA continuity with North Asian and Siberian lineages. Bayesian dating suggests its arrival in the Indian subcontinent during the early mid Holocene (~7 ka), followed by local diversification after ~5 ka. Together, these findings reveal a complex history of long range Holocene maternal gene flow and subsequent isolation driven differentiation, providing new insights into the genomic history of South Indian tribal populations.

evolutionary biology↗

South Asian Maternal Lineage haplogroup R30 Provides Phylogenetic Evidence of human dispersal across South Asia

South Asia is central to debates on early human dispersals, particularly the Out of Africa model and Eurasian colonization. Studies of M haplogroups have been used to support both Northern and Southern route hypotheses, but current archaeological and genetic evidence in the region remains contradictory. In the present work, we find that in addition to haplogroup M lineages, a few R lineages exhibit ancient, locally rooted variation, with R30 being one of the widespread haplogroup of R lineages across South Asia. To better understand South Asian demographic history, we investigated the phylogeographic distribution of haplogroup R30, an indigenous lineage. We used 190 complete modern and ancient sequences from diverse mainland and island populations including incorporation of 44 newly generated sequences which enabled the refinement of the R30 phylogeny and the identification of a novel basal lineage, R30c. Bayesian and {rho}-based age estimates suggest that R30 originated in the Indian subcontinent ~50 kya. Early diversification likely occurred in Northern India, giving rise to R30b (~44 kya), while R30a and R30c differentiated primarily in Southern India. Several subclades of haplogroup R30 exhibit strong signatures of founder effects, particularly among the language isolate Vedda of Sri Lanka, Uru Kurumban of Southern India, and the populations of the Lakshadweep archipelago. Bayesian skyline analyses indicate long-term demographic stability followed by rapid lineage expansion ~20 kya and more recent declines consistent with localised drift and relatively recent founder events. The presence of early-diverging R30 lineages in Thailand and Indonesia further supports long-term connections between South and Southeast Asia. Overall, archaeological and genetic evidence point towards the multiple migrations for South Asia colonizations.

evolutionary biology↗