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Jang, M. K.

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

2 recordsLinked to original sources

Applications of genetic-epigenetic tissue mapping for plasma DNA in prenatal testing, transplantation and oncology

We developed Genetic-Epigenetic Tissue Mapping (GETMap) to determine the tissue composition of plasma DNA carrying genetic variants not present in the constitutional genome through comparing their methylation profiles with relevant tissues. We validated this approach by showing that, in pregnant women, circulating DNA carrying fetal-specific alleles was entirely placenta-derived. In lung-transplant recipients, we showed that, at 72 hours after transplantation, the lung contributed only a median of 17% to the plasma DNA carrying donor-specific alleles and hematopoietic cells contributed a median of 78%. In hepatocellular cancer patients, the liver was identified as the predominant source of plasma DNA carrying tumor-specific mutations. In a pregnant woman with lymphoma, plasma DNA molecules carrying cancer mutations and fetal-specific alleles were accurately shown to be derived from the lymphocytes and placenta, respectively. Analysis of tissue origin for plasma DNA carrying genetic variants is potentially useful for noninvasive prenatal testing, transplantation monitoring and cancer screening.

physiology

Donor-derived mitochondrial DNA variant peptides elicit allo-specific immune response in transplant patients

In stem cell transplant, mitochondrial DNA (mtDNA) nonsynonymous single nucleotide variants (SNVs) between donor and recipient (D-R) trigger alloimmune responses and transplant rejection. Whether similar alloimmune responses occurs in solid-organ transplantation remains unknown, particularly with the presence of human leukocyte antigen mismatches. This study characterized mtDNA SNVs between D-R of 163 human lung transplant pairs, and then, post-transplantation, assessed alloimmune responses against donor-derived mitochondrial peptides using ELISpot to measure interferon gamma (IFN{gamma}) release from recipients monocytes. We identified a median of 6 nonsynonymous mtDNA SNVs (Interquartile Range = 4 - 9) per D-R pair. SNVs were predominantly located at MT-CYB, MT-ATP6, and MT-ND3 genes. The number of SNVs was higher in D-R race non-concordant pairs than in race-concordant pairs. Donor-derived mitochondrial peptides triggered a 19.8-fold higher IFN{gamma} release compared to recipient-derived peptide. These findings were validated in heart transplantation and show that donor-derived mitochondrial peptides trigger allo-specific immune responses after transplantation.

genomics