Mitochondrial research has influenced our understanding of human evolution, physiology and pathophysiology. Mitochondria, intracellular organelles widely known as ‘energy factories’ of the cell, also play fundamental roles in intermediary metabolism, steroid hormone and heme biosyntheses, calcium signaling, generation of radical oxygen species, and apoptosis. Mitochondria possess a distinct DNA (mitochondrial DNA); yet, the vast majority of mitochondrial proteins are encoded by the nuclear DNA. Mitochondria-related genetic defects have been described in a variety of mostly rare, often fatal, primary mitochondrial disorders; furthermore, they are increasingly reported in association with many common morbid conditions, such as cancer, obesity, diabetes and neurodegenerative disorders, although their role remains unclear. This study describes the creation of a human mitochondria-focused cDNA microarray (hMitChip) and its validation in human skeletal muscle cells treated with glucocorticoids. We suggest that hMitChip is a reliable and novel tool that will prove useful for systematically studying the contribution of mitochondrial genomics to human health and disease.
The multistep genetic alterations thought to involve both oncogenes and tumor suppressor genes that are causally related to melanocytic transformation remain largely undetermined (1). Mapping of alterations to chromosome 6 indicates that multiple genetic loci on 6q contribute causally to the development and progression of malignant melanoma (1). This notion is also supported by the introduction of chromosome 6 in malignant melanoma cell lines suppressing either their tumorigenicity (2) or metastasis (3,4). However, the suppressor genes involved have yet to be identified.
Melanocytic transformation is thought to occur by the sequential accumulation of genetic alterations. Evidence implicating human chromosomes as a site for a gene(s) involved in melanoma suppression comes from studies of LOH [loss of heterozygosity], cytogenetics and biologic reversion of tumorigenicity following the introduction of a normal chromosome 6 by microcell-mediated chromosome transfer (Trent et al., 1990). Using a tumorigenic melanoma cell line (UACC 903) and a chromosome-6 suppressed melanoma subline [UACC 903 (+6)], we have isolated a series of genes uniquely expressed in the suppressed subline. A modified PCR-based cDNA subtraction technique was used to generate subtracted cDNA sublibraries for both the parental and (+6) suppressed cells. A total of 32 randomly selected clones from the suppressed sublibrary were isolated and examined, with 24 detecting a transcript by Northern analysis. Of these 24 clones, 21 (88%) demonstrated elevated expressed by Northern analysis in the suppressed subline relative to the tumorigenic parental cell line. In 6/21 differentially expressed clones (29%), expression was exclusive to the suppressed subline. Partial sequence analysis and database searching of these clones indicated that 5/6 were novel with one representing a previously characterized gene. Chromosomal localization of the five novel clones was performed following PCR amplification of a human/rodent somatic cell hybrid mapping panel or fluorescent in situ hybridization. One cDNA (termed AIM1) was localized to a band-region of chromosome 6 frequently deleted in melanomas (6q21). This novel approach should facilitate the identification of genes whose expression is causally related to the suppressed phenotype.