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Sajimon, J.

Publications and source records attributed to Sajimon, J..

2 recordsLinked to original sources

A Versatile, Simple, and Rapid (VSR) method for generating gene clones, diverse mutants, and short gene fragments for molecular biology applications

Gene cloning, site-directed mutagenesis (SDM), and short gene synthesis are essential tools in molecular biology, yet existing approaches remain constrained by efficiency, flexibility, and cost. Here, we developed a versatile, simple, and rapid (VSR) 3-in-1 method that integrates seamless cloning, mutagenesis, and short gene assembly in a single platform. This approach works on the principles of overlap extension polymerase chain reaction (OPCR), uses high-fidelity DNA polymerase and short overlapping primers. Target genes can be directly amplified from genomic DNA or complementary DNA (cDNA) templates and cloned into vectors without intermediate purification, restriction enzyme digestion, or ligation. VSR supports the insertion of DNA fragments ranging from 80 bp to 33 kb at any plasmid locus while enabling the introduction of single or multiple nucleotide substitutions at one or more sites in a single reaction. Using this method, we cloned 35 genes of diverse lengths and two complete viral genomes with efficiencies ranging from 60-100% and introduced up to 17 substitutions in a single mutagenesis reaction. We further demonstrate efficient de novo synthesis of short genes from overlapping oligonucleotides. The VSR method is a reliable, rapid, and cost-effective approach with a wide range of applications for both routine and high-throughput workflows. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=90 SRC="FIGDIR/small/682745v1_ufig1.gif" ALT="Figure 1"> View larger version (45K): org.highwire.dtl.DTLVardef@1295a5aorg.highwire.dtl.DTLVardef@1eacb4eorg.highwire.dtl.DTLVardef@1c98fb1org.highwire.dtl.DTLVardef@1f8bcbe_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗

Repurposing statins in combination therapy for effective ablation of metastatic breast cancer

Metastatic breast cancer (mBC) remains an incurable disease with limited treatment options, highlighting the need for novel therapeutic approaches. Combination therapy with chemotherapeutic agents along with targeted therapy are the most common methods of treatment used in the terminal stages of the disease. Eventual development of resistance to these approaches, leading to fatal outcomes suggests the presence or emergence of a heterogenous population of cells intrinsically resistant to commonly used regimens. Previous work identified a heterogeneous population of metastatic tumor cells with distinct molecular characteristics driven by Macc1 (Metastasis Associated in Colon Cancer 1) overexpression, which could be targeted by lovastatin (transcriptional inhibitor of Macc1). Building on this foundation, the efficacy of lovastatin in targeting metastatic cells with high Macc1 expression was evaluated in lung metastasis, and the regulatory pathways governing Macc1 expression and lovastatin treatment in mBC were investigated. The expression of Macc1, in breast cancer biopsies provides insights into the intra and inter tumor heterogeneity of the Macc1 gene and its correlation with disease outcomes. While some studies suggest synergistic effects between statins and chemotherapeutic agents, comprehensive evaluations of various combinations and their therapeutic outcomes are still needed. The therapeutic efficacy of lovastatin combined with chemotherapy to determine the most effective treatment regimen that maximizes tumor cell ablation demonstrated that lovastatin can effectively ablate the chemoresistant tumor cells in mBC. The translational implications of this research will identify patient subgroups that may benefit most from statin-chemotherapy combinations that could support the repurposing of statins as cost-effective adjuvant therapies for mBC.

cancer biology↗