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1. Loss of 3-O-sulfotransferase enzymes, Hs3st3a1 and Hs3st3b1, reduces kidney and glomerular size and disrupts glomerular architecture.

3. Specific 3-O-sulfated heparan sulfate domains regulate salivary gland basement membrane metabolism and epithelial differentiation.

4. Immunomodulation of salivary gland function due to cancer therapy.

5. FGFR2 is essential for salivary gland duct homeostasis and MAPK-dependent seromucous acinar cell differentiation.

6. Neurotrophin signaling is a central mechanism of salivary dysfunction after irradiation that disrupts myoepithelial cells.

7. FGFR2b is essential for salivary gland duct homeostasis and MAPK-dependent seromucous acinar cell differentiation.

8. Salivary gland function, development, and regeneration.

9. A mesenchymal to epithelial switch in Fgf10 expression specifies an evolutionary-conserved population of ionocytes in salivary glands.

10. Salivary ZG16B expression loss follows exocrine gland dysfunction related to oral chronic graft-versus-host disease.

11. Generation of a Single-Cell RNAseq Atlas of Murine Salivary Gland Development.

12. Stress or injury induces cellular plasticity in salivary gland acinar cells.

13. Concise Review: A Critical Evaluation of Criteria Used to Define Salivary Gland Stem Cells.

14. Limited Regeneration of Adult Salivary Glands after Severe Injury Involves Cellular Plasticity.

15. Cell-Specific Cre Strains For Genetic Manipulation in Salivary Glands.

16. Salivary gland homeostasis is maintained through acinar cell self-duplication.

17. Aquaporins in the adult mouse submandibular and sublingual salivary glands.

18. Aquaporin 5 distribution pattern during development of the mouse sublingual salivary gland.

19. Localization of AQP5 during development of the mouse submandibular salivary gland.

20. Intracellular Ca2+ responses and cell volume regulation upon cholinergic and purinergic stimulation in an immortalized salivary cell line.

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