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Abolished InsP3R2 function inhibits sweat secretion in both humans and mice
Joakim Klar, Chihiro Hisatsune, Shahid M. Baig, Muhammad Tariq, Anna C.V. Johansson, Mahmood Rasool, Naveed Altaf Malik, Adam Ameur, Kotomi Sugiura, Lars Feuk, Katsuhiko Mikoshiba, Niklas Dahl
Joakim Klar, Chihiro Hisatsune, Shahid M. Baig, Muhammad Tariq, Anna C.V. Johansson, Mahmood Rasool, Naveed Altaf Malik, Adam Ameur, Kotomi Sugiura, Lars Feuk, Katsuhiko Mikoshiba, Niklas Dahl
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Research Article Genetics

Abolished InsP3R2 function inhibits sweat secretion in both humans and mice

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Abstract

There are 3 major sweat-producing glands present in skin; eccrine, apocrine, and apoeccrine glands. Due to the high rate of secretion, eccrine sweating is a vital regulator of body temperature in response to thermal stress in humans; therefore, an inability to sweat (anhidrosis) results in heat intolerance that may cause impaired consciousness and death. Here, we have reported 5 members of a consanguineous family with generalized, isolated anhidrosis, but morphologically normal eccrine sweat glands. Whole-genome analysis identified the presence of a homozygous missense mutation in ITPR2, which encodes the type 2 inositol 1,4,5-trisphosphate receptor (InsP3R2), that was present in all affected family members. We determined that the mutation is localized within the pore forming region of InsP3R2 and abrogates Ca2+ release from the endoplasmic reticulum, which suggests that intracellular Ca2+ release by InsP3R2 in clear cells of the sweat glands is important for eccrine sweat production. Itpr2–/– mice exhibited a marked reduction in sweat secretion, and evaluation of sweat glands from Itpr2–/– animals revealed a decrease in Ca2+ response compared with controls. Together, our data indicate that loss of InsP3R2-mediated Ca2+ release causes isolated anhidrosis in humans and suggest that specific InsP3R inhibitors have the potential to reduce sweat production in hyperhidrosis.

Authors

Joakim Klar, Chihiro Hisatsune, Shahid M. Baig, Muhammad Tariq, Anna C.V. Johansson, Mahmood Rasool, Naveed Altaf Malik, Adam Ameur, Kotomi Sugiura, Lars Feuk, Katsuhiko Mikoshiba, Niklas Dahl

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Figure 5

Decreased acetylcholine-induced Ca2+ response of sweat glands from Itpr2–/– mice.

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Decreased acetylcholine-induced Ca2+ response of sweat glands from Itpr2...
(A) Ratio change of Fluo4/Fura Red in sweat glands in response to acetylcholine stimulation. Left: Fura Red image. Arrow indicates the duct portion of a sweat gland. Right: Pseudocolored ratio images of Fluo4/Fura Red before (resting) and after stimulation with 1,000 nM acetylcholine (Ach). Scale bar: 50 μm. (B) Ratio change (see Methods) in sweat glands in response to various dose of acetylcholine. (C) Maximal ratio change (see Methods) of sweat glands (Itpr2+/+, 22 glands; Itpr2–/–, 27 glands) at various acetylcholine concentrations. (D) Expression of total InsP3Rs (InsP3R1–InsP3R3) in Itpr2+/+ and Itpr2–/– sweat glands, detected with anti–pan-InsP3R antibody. Each lane corresponds to a sample from an individual mouse. Quantification of total InsP3R expression in Itpr2+/+ and Itpr2–/– mouse sweat glands is also shown (n = 3); band intensities were normalized to β-actin. Data represent mean ± SEM. *P < 0.05, ***P < 0.001, Student’s t test.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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