A unique isozyme of angiotensin-converting enzyme (ACE) is produced in large amounts by developing germ cells and is referred to as testis ACE. This protein results from the transcriptional recognition of a sperm-specific promoter during spermatogenesis. The expression within germ cells of testis ACE mRNA was studied using in situ hybridization, ribonuclease (RNase) protection, and Northern analysis. In parallel, testis ACE protein expression was measured through use of Western blot analysis and immunohistochemistry. Although testis ACE protein is first detected in step 10 spermatids, testis ACE mRNA is first detected in a developmentally younger cell population, late pachytene spermatocytes. Thus, testis ACE mRNA is translationally arrested for a period of several days until late in spermiogenesis.
Angiotensin converting enzyme (ACE) is a component of the renin-angiotensin system and is critical in the homeostatic control of systemic blood pressure. There are two isozymes of ACE that result from two distinct promoter regions with the single ACE gene. In this article, we discuss the biochemistry of tissue specific promoter recognition as exemplified by the ACE gene.
There are two isozymes of angiotensin-converting enzyme (ACE), one produced by somatic tissues and a smaller protein synthesized by developing spermatozoa (testis ACE). To investigate the molecular control of testis ACE, we generated mice transgenic for a construct containing a putative testis-specific ACE promoter linked to the Escherichia coli reporter gene encoding beta-galactosidase. The transgenic mice express beta-galactosidase protein and RNA only within the testis. Histochemical analysis of the transgenic mice shows co-localization of beta-galactosidase protein and endogenous ACE within elongating spermatozoa. These studies demonstrate that transcription of testis ACE is controlled by a strong intragenic testis-specific promoter that is contained within a 698-base pair fragment immediately upstream from the transcription start site of testis ACE. Characterization of the testis ACE promoter may provide insights into the molecular mechanisms controlling cell stage-specific gene expression in the male germ line.
Genomic DNA 5' to the mouse and human genes encoding angiotensin-converting enzyme has been isolated and analyzed. A sequence comparison identifies two discrete regions of genomic DNA that are highly conserved. One region, found immediately 5' to the mouse and human ACE genes, is a GC rich segment that contains a "TATA box" and several potential Spl binding sites. The second conserved region is found further 5' and contains several potential regulatory cis elements including a possible glucocorticoid responsive element. These two regions of genomic DNA may influence the rate of mRNA transcription from the angiotensin-converting enzyme gene.
Angiotensin-converting enzyme (ACE) is a zinc-containing dipeptidyl carboxypeptidase that catalyzes the conversion of angiotensin I to the potent vasoconstrictor angiotensin II. By analyzing cDNA and genomic DNA, we have constructed a consensus sequence encoding the testis isozyme of mouse ACE. Testis ACE cDNA contains 2,435 base pairs and encodes a protein of 732 amino acids. The N-terminal 66 amino acids are unique to the testis isozyme, while the remaining 666 are identical to the carboxyl half of mouse somatic ACE. The overall conservation of amino acid sequence between the testis isozymes of the mouse, rabbit, and human is 78 to 84%. The conservation of amino acids for the N-terminal domain uniquely expressed within the testis is 63 to 67% between these species. Primer extension and RNase protection experiments show that RNA transcription of the testis ACE isozyme begins 16 or 17 bases upstream from the translation start site. A sequence element resembling a TATA box is found 25 bases 5' of the transcription start site. To create its unique isozyme of ACE, the testis begins mRNA transcription in the middle of the exonic-intronic structure of somatic ACE, within a sequence treated as an intron by somatic tissues. Testis ACE is not the result of alternative RNA splicing but seems due to the start of transcription at a unique site within the ACE gene.