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During inflammation, neutrophils are one of the first responding cells of innate immunity, contributing to a fast clearance of infection and return to homeostasis. However, excessive neutrophil infiltration accelerates unsolicited disproportionate inflammation for instance in autoimmune diseases such as rheumatoid arthritis. The channel-kinase TRPM7 is an essential regulator of immune system homeostasis. Naïve murine T cells with genetic inactivation of the TRPM7 enzyme, due to a point mutation at the active site, are unable to differentiate into pro-inflammatory T cells, whereas regulatory T cells develop normally. Moreover, TRPM7 is vital for lipopolysaccharides (LPS)-induced activation of murine macrophages. Within this study, we show that the channel-kinase TRPM7 is functionally expressed in neutrophils and has an important impact on neutrophil recruitment during inflammation. We find that human neutrophils cannot transmigrate along a CXCL8 chemokine gradient or produce reactive oxygen species in response to gram-negative bacterial lipopolysaccharide LPS, if TRPM7 channel or kinase activity are blocked. Using a recently identified TRPM7 kinase inhibitor, TG100-115, as well as murine neutrophils with genetic ablation of the kinase activity, we confirm the importance of both TRPM7 channel and kinase function in murine neutrophil transmigration and unravel that TRPM7 kinase affects Akt1/mTOR signaling thereby regulating neutrophil transmigration and effector function. Hence, TRPM7 represents an interesting potential target to treat unwanted excessive neutrophil invasion.
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http://dx.doi.org/10.3389/fimmu.2020.606893 | DOI Listing |
JACC Basic Transl Sci
August 2025
Cardiovascular Division, Department of Medicine, Lillehei Heart Institute, University of Minnesota-Twin Cities, Minneapolis, Minnesota, USA. Electronic address:
Hypomagnesemia (HypoMg) and subsequent oxidative stress cause diabetic cardiac diastolic dysfunction and heart failure with preserved ejection fraction. A Mg transporter with channel and kinase function, transient receptor potential cation channel subfamily M 7 (TRPM7), is upregulated in HypoMg. Diabetes mellitus mice had HypoMg and elevated TRPM7 expression in the heart.
View Article and Find Full Text PDFJACC Basic Transl Sci
August 2025
Department of Cardiovascular Medicine, Gunma University Graduate School of Medicine, Maebashi, Japan; Division of Cardiology, Gunma Prefectural Cardiovascular Center, Maebashi, Japan. Electronic address:
J Leukoc Biol
July 2025
Facultad de Bioanálisis, Universidad Veracruzana. Agustín de Iturbide s/n esq. Carmen Serdán, Veracruz, Ver., 91700, México.
The tumor microenvironment (TME) is a complex and dynamic ecosystem consisting of both cellular and non-cellular components that collectively modulate the antitumor immune response, as well as cancer growth, invasion, metastasis, immune evasion, and resistance to therapy. Calcium (Ca2+) and magnesium (Mg2+) are two essential ions for a wide range of cellular processes, including proliferation, differentiation, migration, and protein secretion. The intracellular homeostasis and spatiotemporal distribution of these two ions are tightly regulated by ion channels, notably members of the transient receptor potential melastatin (TRPM) subfamily, such as TRPM2 and TRPM7.
View Article and Find Full Text PDFBr J Pharmacol
September 2025
Graduate School of Pharmaceutical Sciences, Kyoto, Japan.
Background And Purpose: C-type natriuretic peptide (CNP) stimulates skeletal growth by acting on the growth plates of long bones, and a CNP variant is clinically used for achondroplasia treatment. We previously reported that CNP stimulates the autonomic Ca influx mediated by TRPM7 channels in growth plate chondrocytes to facilitate extracellular matrix synthesis for bone growth. In this study, we attempted to stimulate CNP signalling using phosphodiesterase (PDE) inhibitors.
View Article and Find Full Text PDFArch Toxicol
August 2025
Walther-Straub Institute of Pharmacology and Toxicology, LMU Munich, Munich, Germany.
TRPM7 is a kinase-coupled ion channel that exhibits high activity in the immune and epithelial cells of different organs, including the lung. Electrophysiological studies have established that the TRPM7 channel displays high permeability to Mg, Zn, and Ca, as well as trace metal cations. While the critical role of TRPM7 in the cellular balance of Mg, Zn, and Ca is well-documented, its contribution to the cellular uptake of trace metal cations, frequent respiratory pollutants, remains unclear.
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