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Biomedical subjects

Jason Y Park

Publications and source records attributed to Jason Y Park.

6 recordsLinked to original sources

Genetic haplotypes in VWA8, OSBPL6, and ADAMTS9-AS2 are associated with immune-related adverse effects in ICI-treated patients with cancer.

BACKGROUND: Immune-related adverse events (irAEs) remain largely unpredictable, potentially affecting multiple organ systems and occurring at almost any point during and even occasionally after immune checkpoint inhibitor (ICI) treatment. To identify populations at risk for these immune-mediated toxicities, we analyzed genetic characteristics and immune markers associated with clinically significant irAEs. METHODS: We carried out a genome-wide association study on 373 white patients receiving ICI treatment. We identified single nucleotide polymorphisms associated with irAEs. Blood cytokine profiling and peripheral blood mononuclear cell RNA sequencing were performed at pretreatment baseline and 6-8 weeks after ICI initiation. Findings were validated in two external cohorts. RESULTS: We identified genetic haplotypes in VWA8 (Von Willebrand Factor A Domain Containing 8), OSBPL6 (Oxysterol Binding Protein Like 6), and ADAMTS9-AS2 (ADAM Metallopeptidase With Thrombospondin Type 1 Motif 9 Antisense RNA 2) associated with grade &#x2265;2 irAEs. Patients carrying risk haplotypes for one or more genes exhibited significantly greater rates of grade &#x2265;2 (OR 3.02; 95%&#x2009;CI 1.83 to 5.02; p<0.001), grade &#x2265;3 (OR 3.59; 95%&#x2009;CI 1.93 to 6.64; p<0.001), and multiple type irAE (OR 2.60; 95%&#x2009;CI 1.53 to 4.39; p<0.001). Serum CCL3 levels were significantly elevated in individuals carrying risk haplotypes (p=0.03). Gene expression analysis demonstrated activated autoimmune and inflammatory pathways in the genetic risk group. CONCLUSIONS: Novel polymorphisms in VWA8, OSBPL6, and ADAMTS9-AS2 may impact immune pathways, promote inflammation, potentiate autoimmune phenotypes, and convey risk of irAE in ICI-treated patients.

Humans↗

Molecular assay for detection of the common carnitine palmitoyltransferase 1A 1436(C>T) mutation.

BACKGROUND: Carnitine palmitoyltransferase 1A (CPT1A) deficiency is a metabolic disorder that occurs at a key checkpoint of fatty acid metabolism. A new form of CPT1A deficiency caused by a mutation at nucleotide 1436 (C>T), resulting in an amino acid substitution of leucine for proline at position 479 (P479L), has been isolated in Canadian First Nations and Inuit populations. The present study offers a molecular method for assessing CPT1A 1436 (C>T) mutation status. METHODS: CPT1A-deficient fibroblasts from four patient fibroblast cell lines and ten patient peripheral blood spots were all analyzed by polymerase chain reaction (PCR) coupled to restriction endonuclease (RE) treatment. Genomic DNA was PCR-amplified and treated with an RE specific for normal DNA. CPT1A 1436 (C>T) mutations were identified by resistance to RE treatment. RESULTS: The RE-PCR assay identified homozygosity for the 1436 (C>T) mutation in four fibroblast cell lines and nine blood spots with CPT1A enzyme deficiency. In addition, the assay identified one blood spot that corresponded to the heterozygous genotype. CONCLUSIONS: RE-PCR assay for the 1436 (C>T) mutation provides a rapid assay for the diagnosis of CPT1A deficiency resulting from this mutation. The assay will have utility in screening populations with a high prevalence of this genotype.

Amino Acid Substitution↗

Miniaturized detection technology in molecular diagnostics.

Miniaturization of genetic tests represents the convergence of molecular biology and engineering and is leading to a new class of small analyzers and test systems for genetic testing with improved analytical characteristics. Miniaturization initially focused on devices that contained micrometer-sized features designed for a particular analytical purpose (e.g., filters for cell isolation and chips for capillary electrophoresis). Now, the focus is shifting to analytical applications based on nano-sized objects such as nanotubes, nanochannels, nanoparticles, nanopores and nanocapacitors. These nanofabricated objects provide new tools for sequencing of nucleic acids and rapid, multiplexed, nucleic acid detection.

Animals↗