The activity of the rectal gland of the North Pacific spiny dogfish Squalus suckleyi is glucose dependent and stimulated by glucagon-like peptide-1

被引:10
|
作者
Deck, Courtney A. [1 ,4 ,5 ]
Anderson, W. Gary [2 ,5 ]
Conlon, J. Michael [3 ]
Walsh, Patrick J. [1 ,5 ]
机构
[1] Univ Ottawa, Dept Biol, Ottawa, ON K1N 6N5, Canada
[2] Univ Manitoba, Dept Biol Sci, Winnipeg, MB R3T 2N2, Canada
[3] Ulster Univ, Sch Biomed Sci, SAAD Ctr Pharm & Diabet, Coleraine BT52 1SA, Londonderry, North Ireland
[4] North Carolina State Univ, Dept Biol Sci, Box 7617, Raleigh, NC 27695 USA
[5] Bamfield Marine Sci Ctr, Bamfield, BC V0R 1B0, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Rectal gland; Glucose transporter; Glucagon-like peptide; Elasmobranchs; Dogfish; CHLORIDE TRANSPORT; SCYLIORHINUS-CANICULA; CYCLIC-AMP; ACANTHIAS; SHARK; SECRETION; MECHANISM; FAMILY; WATER;
D O I
10.1007/s00360-017-1102-9
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Elasmobranchs possess a specialised organ, the rectal gland, which is responsible for excreting sodium chloride via the posterior intestine. Previous work has indicated that the gland may be activated by a number of hormones, some of which are likely related to the salt or volume loads associated with feeding. Furthermore, evidence exists for the gland being glucose dependent which is atypical for an elasmobranch tissue. In this study, the presence of sodium-glucose co-transporters (SGLTs) in the rectal gland and their regulation by feeding were investigated. In addition, the hypothesis of glucose dependence was examined through the use of glucose transporter (GLUT and SGLT) inhibitors, phlorizin, Indinavir, and STF-31 and their effect on secretion by the rectal gland. Finally, the effects on rectal gland activity of insulin, glucagon, and glucagon-like peptide-1, hormones typically involved in glucoregulation, were examined. The results showed that sglt1 mRNA is present in the gland, and there was a significant reduction in sglt1 transcript abundance 24 h post-feeding. An almost complete suppression of chloride secretion was observed when glucose uptake was inhibited, confirming the organ's glucose dependence. Finally, perfusion with dogfish GLP-1 (10 nmol L-1), but not dogfish glucagon, was shown to markedly stimulate the activity of the gland, increasing chloride secretion rates above baseline by approximately 16-fold (p < 0.001). As GLP-1 is released from the intestine upon feeding, we propose that this may be the primary signal for activation of the rectal gland post-feeding.
引用
收藏
页码:1155 / 1161
页数:7
相关论文
共 50 条
  • [1] The activity of the rectal gland of the North Pacific spiny dogfish Squalus suckleyi is glucose dependent and stimulated by glucagon-like peptide-1
    Courtney A. Deck
    W. Gary Anderson
    J. Michael Conlon
    Patrick J. Walsh
    [J]. Journal of Comparative Physiology B, 2017, 187 : 1155 - 1161
  • [2] The chondrichthyan glucagon-like peptide 3 regulates hepatic ketone metabolism in the Pacific spiny dogfish Squalus suckleyi
    Weinrauch, Alyssa M.
    Bouyoucos, Ian A.
    Conlon, J. Michael
    Anderson, W. Gary
    [J]. GENERAL AND COMPARATIVE ENDOCRINOLOGY, 2024, 350
  • [3] Effects of glucose and insulin administration on glucose transporter expression in the North Pacific spiny dogfish (Squalus suckleyi)
    Deck, Courtney A.
    Anderson, W. Gary
    Walsh, Patrick J.
    [J]. GENERAL AND COMPARATIVE ENDOCRINOLOGY, 2017, 247 : 46 - 52
  • [4] Hormonal effects on glucose and ketone metabolism in a perfused liver of an elasmobranch, the North Pacific spiny dogfish, Squalus suckleyi
    Schoen, Alexandra N.
    Weinrauch, Alyssa M.
    Bouyoucos, Ian A.
    Treberg, Jason R.
    Anderson, W. Gary
    [J]. GENERAL AND COMPARATIVE ENDOCRINOLOGY, 2024, 352
  • [5] Efficacy and safety of high-dose glucagon-like peptide-1, glucagon-like peptide-1/glucose-dependent insulinotropic peptide, and glucagon-like peptide-1/glucagon receptor agonists in type 2 diabetes
    De Block, Christophe E. M.
    Dirinck, Eveline
    Verhaegen, Ann
    Van Gaal, Luc F.
    [J]. DIABETES OBESITY & METABOLISM, 2022, 24 (05): : 788 - 805
  • [6] Glucagon-Like Peptide-1: Glucose Homeostasis and Beyond
    Cho, Young Min
    Fujita, Yukihiro
    Kieffer, Timothy J.
    [J]. ANNUAL REVIEW OF PHYSIOLOGY, VOL 76, 2014, 76 : 535 - 559
  • [7] Glucagon-like peptide-1, glucose homeostasis and diabetes
    Holst, Jens J.
    Deacon, Carolyn F.
    Vilsboll, Tina
    Krarup, Thure
    Madsbad, Sten
    [J]. TRENDS IN MOLECULAR MEDICINE, 2008, 14 (04) : 161 - 168
  • [8] Cellular glucose availability and glucagon-like peptide-1
    Park, Jae-Hyung
    Earm, Yung E.
    Song, Dae-Kyu
    [J]. PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 2011, 107 (02): : 286 - 292
  • [9] Practical guide: Glucagon-like peptide-1 and dual glucose-dependent insulinotropic polypeptide and glucagon-like peptide-1 receptor agonists in diabetes mellitus
    Alqifari, Saleh Fahad
    Alkomi, Omar
    Esmail, Abdullah
    Alkhawami, Khadijeh
    Yousri, Shahd
    Muqresh, Mohamad Ayham
    Alharbi, Nawwarah
    Khojah, Abdullah A.
    Aljabri, Ahmed
    Allahham, Abdulrahman
    Prabahar, Kousalya
    Alshareef, Hanan
    Aldhaeefi, Mohammed
    Alrasheed, Tariq
    Alrabiah, Ali
    Albishi, Laila A.
    [J]. WORLD JOURNAL OF DIABETES, 2024, 15 (03)
  • [10] GLUCAGON-LIKE PEPTIDE-1 HAS NO GLUCAGON-LIKE EFFECT ON PLASMA-GLUCOSE AND INSULIN
    GHIGLIONE, M
    UTTENTHAL, LO
    GEORGE, SK
    BLOOM, SR
    [J]. DIABETOLOGIA, 1984, 27 (02) : A278 - A279