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Shruti Mishra

Publications and source records attributed to Shruti Mishra.

2 recordsLinked to original sources

PTBP1 at the host-virus interface: mechanistic roles in viral RNA translation, replication, and immune modulation.

Viruses require the involvement of host RNA binding proteins for completion of important steps of their life cycle. Polypyrimidine tract binding protein 1 (PTBP1) is an RNA-binding protein found ubiquitously which performs important regulatory functions like alternative splicing, RNA stability, RNA localization, and translation by virtue of its four RRMs and shuttling between nucleus and cytoplasm. There is increasing evidence showing that many viruses make use of such regulatory roles of PTBP1 to facilitate their gene expression and replication. This review describes the existing mechanistic knowledge about the PTBP1 functions during viral infection, paying attention to the role of PTBP1 in viral RNA translation, viral RNA genome replication, and regulation of host antiviral response. Special attention is paid to the regulation by PTBP1 of IRES-dependent translation of enteroviruses and hepatitis C virus, as well as to the PTBP1 contribution to RNA stabilization, long-distance RNA interactions, and genome cyclization of flaviviruses such as dengue virus and Japanese encephalitis virus. Recent data on the PTBP1 function in coronavirus RNA metabolism are discussed as well. Furthermore, the role of PTBP1 in being both proviral and antiviral is reviewed in terms of innate immunity signalling pathways, stress granule biology, and virus-host interaction. Finally, we will explore the possibility of PTBP1 being used as a host-directed antiviral drug target despite the hurdles in doing so considering its multifunctionality as an essential cellular RNA-binding protein.

Polypyrimidine Tract-Binding Protein

Impact of Somatic Mutations on Treatment Response and Resistance in Chronic Myeloid Leukemia.

INTRODUCTION: Tyrosine kinase inhibitors (TKIs) have transformed the treatment of chronic myeloid leukemia (CML); yet, diverse molecular responses and resistance persist. BCR::ABL1 kinase-domain (TKD) mutations constitute just a fraction of this resistance, and the impact of additional somatic mutations on disease progression and early molecular response remains incompletely defined. METHODS: This single-centre cohort study analyzed 109 NGS-tested patients with CML, comprising 44 with TKI-resistant disease and 65 newly diagnosed patients. Targeted next-generation sequencing using a 135-gene myeloid panel was performed on 109 patients. An additional pilot subgroup of 30 TKI-resistant patients underwent BCR::ABL1 kinase-domain analysis by PCR/Sanger sequencing and was analyzed separately. Molecular response was assessed using BCR::ABL1 transcript levels on the International Scale and interpreted according to ELN 2020 recommendations. RESULTS: Somatic mutations were identified in 52.3% of TKI-resistant and 29.2% of newly diagnosed patients. All Cohort 1 blast-crisis patients were mutation-positive, and several concurrent abnormalities were more common in Cohort 1 than in Cohort 2, indicating clonal complexity. In Cohort 2, MMR was achieved in 28/39 (71.8%) mutation-negative and 6/13 (46.2%) mutation-positive patients. Mutation-positivity at baseline was associated with reduced MMR chances but not statistically significant (odds ratio 0.34; 95% confidence interval 0.09-1.23; p = 0.099). ASXL1 emerged as the most common non-ABL1 mutation but was not statistically significant. CONCLUSIONS: In this Indian CML cohort, somatic mutations were prevalent in TKI-resistant disease, linked to advanced phase and clonal complexity, and demonstrated a non-significant trend toward lower early MMR at diagnosis, highlighting the importance of genomic testing in this context.

Humans