Human airway epithelia express catalytically active NEU3 sialidase

Author:

Lillehoj Erik P.1,Hyun Sang Won2,Feng Chiguang3,Zhang Lei3,Liu Anguo2,Guang Wei1,Nguyen Chinh2,Sun Wenji4,Luzina Irina G.25,Webb Tonya J.4,Atamas Sergei P.25,Passaniti Antonino65,Twaddell William S.6,Puché Adam C.7,Wang Lai-Xi89,Cross Alan S.23,Goldblum Simeon E.265

Affiliation:

1. Department of Pediatrics,

2. Department of Medicine,

3. Center for Vaccine Development,

4. Department of Microbiology and Immunology,

5. Department of Veterans Affairs, Baltimore VA Medical Center, Baltimore, Maryland

6. Department of Pathology,

7. Department of Anatomy and Neurobiology,

8. Institute of Human Virology,

9. Department of Biochemistry and Molecular Biology, University of Maryland School of Medicine, Baltimore, Maryland; and

Abstract

Sialic acids on glycoconjugates play a pivotal role in many biological processes. In the airways, sialylated glycoproteins and glycolipids are strategically positioned on the plasma membranes of epithelia to regulate receptor-ligand, cell-cell, and host-pathogen interactions at the molecular level. We now demonstrate, for the first time, sialidase activity for ganglioside substrates in human airway epithelia. Of the four known mammalian sialidases, NEU3 has a substrate preference for gangliosides and is expressed at mRNA and protein levels at comparable abundance in epithelia derived from human trachea, bronchi, small airways, and alveoli. In small airway and alveolar epithelia, NEU3 protein was immunolocalized to the plasma membrane, cytosolic, and nuclear subcellular fractions. Small interfering RNA-induced silencing of NEU3 expression diminished sialidase activity for a ganglioside substrate by >70%. NEU3 immunostaining of intact human lung tissue could be localized to the superficial epithelia, including the ciliated brush border, as well as to nuclei. However, NEU3 was reduced in subepithelial tissues. These results indicate that human airway epithelia express catalytically active NEU3 sialidase.

Publisher

American Physiological Society

Subject

Cell Biology,Physiology (medical),Pulmonary and Respiratory Medicine,Physiology

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