Alternative splice variants of plasma membrane calcium-ATPases in human corneal epithelium

Ernest F Talarico1, Nancy J Mangini

  • 1Department of Anatomy and Cell Biology, Indiana University School of Medicine-Northwest, Gary, IN 46408-1197, USA. etalaric@iun.edu

Experimental Eye Research
|October 13, 2007
PubMed

Insights

Human corneal epithelium expresses diverse plasma membrane calcium-ATPase (PMCA) splice variants, including novel PMCA2((i)) and previously uncharacterized PMCA1kb, with unique expression patterns at splice site A.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Ophthalmology

Background:

  • Plasma membrane calcium-ATPases (PMCAs) regulate intracellular calcium, crucial for cellular functions.
  • Four PMCA genes generate diverse isoforms through alternative splicing at sites A, B, and C.
  • Previous research confirmed PMCA expression and localization in human corneal epithelium (hCE).

Purpose of the Study:

  • To identify and characterize the specific PMCA splice variants expressed in human corneal epithelium (hCE).
  • To investigate the expression patterns of PMCA isoforms and their splice variants in hCE.
  • To compare hCE PMCA splice variant expression with other tissues.

Main Methods:

  • Total RNA extraction from human corneal epithelium (hCE) from five cadaver donors.
  • RT-PCR using PMCA isoform-specific primers targeting splice sites A, B, and C.
  • Sequencing and cloning of amplified PMCA cDNAs.

Main Results:

  • Consistent expression of PMCA1 (PMCA1b, PMCA1kb) and PMCA4 (4x, 4b) splice variants across all donors.
  • Variable expression of PMCA2 and PMCA3, detected in two of five donors.
  • Identification of a novel PMCA2 variant (PMCA2((i))) and documentation of PMCA1kb in hCE.
  • Absence of PMCA1, PMCA2, and PMCA3 transcripts at splice site A in hCE, contrasting with other tissues.

Conclusions:

  • Human corneal epithelium expresses a variety of PMCA splice variants.
  • The PMCA1kb variant, previously found in intestine and pancreatic beta cells, is present in hCE.
  • A novel PMCA2 variant, PMCA2((i)), has been identified in hCE.
  • Distinct molecular configurations at splice site A in hCE PMCAs may explain the lack of amplification with standard primers.

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