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March 5, 2026Open Forum Infectious Diseases0 citationsOpen Access

Targeted Genomic Surveillance Unveils Genetic Variations linked to Regional Malaria Drug Resistance Dynamics in India

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AKAjinkya KhilariSSShweta SharmaMBManali Bajpai

Key Points

  • The research aims to explore genetic variants linked to antimalarial drug resistance in various regions of India.
  • Analyzed 238 Plasmodium falciparum samples from six states in India.
  • Sequenced 15 genes linked to drug effectiveness using nanopore sequencing.
  • Utilized a highly sensitive PfMDR15 surveillance panel for analysis.
  • Distinct resistance profiles observed in central India and the Northeast.
  • High-frequency chloroquine resistance and specific haplotypes found in the Northeast.
  • Emerging lumefantrine tolerance observed in central India.
  • No artemisinin resistance mutations detected, indicating continued effectiveness of ACT.

Abstract

Abstract Background India has made substantial progress in reducing Plasmodium falciparum malaria cases and has set a target to eliminate malaria by 2030. Although ACT treatment remains effective, tracking regional differences in genetic variants associated with antimalarial resistance is required for effective drug policy implementation. Methods We analysed 238 P. falciparum clinical samples from six Indian states by sequencing 15 parasite genes associated with reduced drug effectiveness. The method involved nanopore sequencing of target gene amplicons derived from dried blood spots using a highly sensitive PfMDR15 surveillance panel. Results India’s historical policy of artesunate-sulfadoxine-pyrimethamine in central India and artemether-lumefantrine in the Northeast has shaped contrasting resistance profiles. In the Northeast, chloroquine resistance persisted at high frequency (Pfcrt K76T and CVIET haplotype; Pfaat1 S258L), alongside quintuple and sextuple Pfdhfr–Pfdhps haplotypes conferring complete sulfadoxine-pyrimethamine resistance. Central India showed variable chloroquine resistance (parasites largely retained wild-type Pfcrt) and emerging lumefantrine tolerance (Pfmdr1 Y184F, Pfaat1 S258L). Interestingly, Delhi (Central India) parasites resembled profiles from the distant Northeast, which borders South East Asia. The detection of Pfaat1 S258L, previously reported only from Africa and associated with reduced lumefantrine susceptibility, suggests convergent evolution under ACT partner-drug pressure. No WHO-validated Pfk13 artemisinin resistance mutations were detected, supporting continued efficacy of artemisinin-based combination therapy (ACT). Conclusion India’s resistance landscape is fragmented, with signals of expanding lumefantrine tolerance and importation or evolution of globally relevant mutations. These findings highlight the importance of integrating molecular genomic surveillance into malaria control policy to monitor and protect ACT effectiveness and advance malaria elimination.

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Cite This Study

Khilari et al. (2026) studied this question.

synapsesocial.com/papers/69a91dedd6127c7a504c144fhttps://doi.org/10.1093/ofid/ofag106
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