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Acta Physiologica

Wiley

All preprints, ranked by how well they match Acta Physiologica's content profile, based on 17 papers previously published here. The average preprint has a 0.01% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.

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Insulin-independent glucose uptake in skeletal muscle by coupled SGLT and Na,K-ATPase transport

Norman, N. J.; Radzyukevich, T. L.; Chomczynski, P. W.; Rymaszewski, M.; Fokt, I.; Priebe, W.; Schmidt, L.; Zhu, T.; Mackenzie, B.; Figueroa, J. L.; Heiny, J. A.

2026-03-27 physiology 10.64898/2026.03.24.714065 medRxiv
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Exercise is a cornerstone therapy for diabetes because working skeletal muscles take up glucose at dramatically greater rates than postprandial insulin-stimulated glucose uptake and, notably, do so without a requirement for insulin. This remarkable ability of working muscles is preserved in diabetes, when muscles become resistant to insulin. However, the mechanism of insulin-independent glucose uptake by working muscles is not fully understood. Here we describe a previously unrecognized glucose uptake pathway in muscle, which we refer to as "mSGLT" based on shared properties with the Sodium Glucose Linked Transporter family. In contrast to the abundant GLUT4 transporter, mSGLT is not regulated by insulin, requires Na,K-ATPase-2 activity, and transports the hexose -methyl-D-glucoside (MDG), a glucose derivative that is handled by SGLTs but not GLUT4. The mSGLT pathway and GLUT transport pathways are independent and additive. In addition to exercise, mSGLT imports glucose under other conditions of adrenergic stimulation, which inhibits pancreatic insulin release and reduces the insulin sensitivity of muscle. SGLT2-specific antibodies recognize a protein in muscle of similar size to the kidney SGLT2; this protein localizes to the muscle t-tubules, together with Na,K-ATPase-2 and MAP17, the regulatory subunit of SGLT2. However, skeletal muscles do not express a full-length transcript of Slc5a2 (SGLT2), and SGLT2-specific inhibitors do not inhibit mSGLT with high affinity. The novel transporter may be a muscle variant of Slc5a2 that results from post-transcriptional or post-translational mechanisms. mSGLT and its regulation offer potential muscle-specific therapeutic targets for treating hyperglycemia and other conditions when insulin-stimulated glucose disposal into muscle is impaired.

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Renal adaptation to high salt diet requires tubular Na+ secretion through type A intercalated cells

Rafael, C.; Morla, L.; Billiet, J.; Cheval, L.; Lasaad, S.; Placier, S.; Walter, C.; Picard, N.; Crambert, G. C.

2026-02-04 physiology 10.64898/2026.02.02.702743 medRxiv
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BackgroundIn the context of increased salt intake in the world population, the understanding of the mechanisms that contribute to its correct renal excretion and therefore, avoid variation of blood volume and blood pressure is of major importance. MethodsMolecular, ex vivo microperfusion on isolated tubules, and integrative analysis, was used to identify, characterize and investigate a Na+ secretion pathway in the collecting duct. ResultsIn collecting duct of mice, salt load induced an increase of the type A intercalated cells (AIC) number, an overexpression of the H(Na),K-ATPase type 2 (HKA2) catalytic subunit Atp12a and a stimulation of the bumetanide-sensitive Na+ secretion in isolated and microperfused tubules. Surprisingly, HKA2KO mice fed a high-salt diet exhibit a strong dysregulation of their Na+ and water balance with a pronounced loss of Na+ and fluid, alkalosis, hypokalemia and low blood pressure. This Bartter-like phenotype is due to an over-inhibition of the thick ascending limb (TAL) related to an elevated PGE2 production. ConclusionOur findings establish that activation of Na+ secretion in AIC act as the fine-tuning knob in the regulation of renal Na+ excretion in response to high salt intake. Its absence is overcompensated by an inhibition of the Na+ transport system of the TAL.

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Chronic cold exposure induces plasticity of mitochondrial calcium uptake in beige and brown fat of UCP1-deficient mice.

Chamorro, C. G.; Pathuri, S.; Acin-Perez, R.; Chhan, M.; Milner, M. G.; Ermolova, N.; Jones, A. E.; Divakaruni, A. S.; Stiles, L.; Hevener, A. L. S.; Zhou, Z.; Shirihai, O. S.; Kirichok, Y.; Bertholet, A. M.

2026-03-18 physiology 10.64898/2026.03.16.712209 medRxiv
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Brown adipose tissue (BAT) is a unique tissue with mitochondria specialized for thermogenesis via the BAT-specific uncoupling protein 1 (UCP1). Ucp1-/- mice cannot tolerate acute exposure to cold, illustrating the necessity of UCP1 for efficient mitochondrial thermogenesis. However, these mice adapt to low temperatures through a gradual acclimation process, suggesting a high degree of mitochondrial plasticity in brown and beige fat cells. This phenomenon, which remains to be fully elucidated, indicates the potential for these mitochondria to implement effective thermogenic mechanisms in the absence of uncoupling protein 1 (UCP1). Here, we investigated mitochondrial remodeling in beige and brown fat of Ucp1-/- mice to determine how they fulfill their thermogenic role. Upon gradual acclimation to a cold environment, Ucp1-/- mice exhibited body metabolic parameters and temperatures in the interscapular region similar to those of wild-type mice of BAT, highlighting effective thermogenesis. Interestingly, mitochondrial patch-clamp analysis and a mitochondrial Ca2+ swelling assay revealed a dramatic increase in Ca2+ uptake depending on the mitochondrial calcium uniporter (MCU) in BAT mitochondria from Ucp1-/- mice when robust thermogenesis was required. Mitochondrial remodeling was accompanied by markedly increased tethering between mitochondria and the endoplasmic reticulum (ER) in Ucp1-/- mice, confirming a significant restructuring of the contact sites between the ER and mitochondria, likely to adapt to a new Ca2+ homeostasis. Respiratory complexes also underwent significant reorganization, which partly led to a reduction in their assembly. Levels of ATP synthase and its F1 subcomplex increased, suggesting a major source of ATP consumption and energy expenditure. We propose a new role for MCU as a key regulator of mitochondrial plasticity, enabling efficient thermogenesis in beige and brown adipose tissues in the absence of UCP1.

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Adaptive remodeling of rat adrenomedullary stimulus-secretion coupling in response to a chronic hypertensive environment

Paille, V.; Park, J.; Toutain, B.; Bourreau, J.; Fontanaud, P.; De Nardi, F.; Gabillard-Lefort, C.; Breard, D.; Guilet, D.; Henrion, D.; Legros, C.; Guerineau, N. C.

2023-11-28 physiology 10.1101/2023.11.28.568973 medRxiv
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Chronic elevated blood pressure impinges on the functioning of multiple organs and therefore harms body homeostasis. Elucidating the protective mechanisms whereby the organism copes with sustained or repetitive blood pressure rises is therefore a topical challenge. Here we address this issue in the adrenal medulla, the master neuroendocrine tissue involved in the secretion of catecholamines, influential hormones in blood pressure regulation. Using acute adrenal slices from spontaneously hypertensive rats, we show that chromaffin cell stimulus-secretion coupling is remodeled, resulting in a less efficient secretory function primarily upon sustained electrical or cholinergic challenges. The remodeling is supported by revamped cellular and tissular mechanisms, including chromaffin cell excitability through voltage-gated ion channel expression changes, gap junctional communication and cholinergic synaptic transmission. As such, by weakening its competence to release catecholamines, the hypertensive medulla has elaborated an adaptive shielding mechanism against damaging effects of redundant elevated catecholamine secretion and associated blood pressure.

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Vertical sleeve gastrectomy lowers kidney SGLT2 expression in the mouse

Akalestou, E.; Lopez-Noriega, L.; Leclerc, I.; Rutter, G. A.

2019-08-21 physiology 10.1101/741330 medRxiv
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BackgroundBariatric surgery has been established to improve insulin sensitivity and glucose clearance, but also increases insulin and glucagon secretion. Each of the above effects have also been observed following treatment with sodium glucose co-transporter 2 (SGLT2) inhibitors.\n\nAimTo determine whether there is an effect of bariatric surgery (Vertical Sleeve Gastrectomy; VSG) on renal SGLT2 expression in mice.\n\nMethodsEighteen lean mice underwent VSG (n=8) or sham (n=9) surgery. Glucose tolerance tests with or without treatment with the SGLT2 inhibitor dapagliflozin were performed four weeks post operatively, in order to assess if pharmacological SGLT2 inhibition has the same euglycemic effects after bariatric surgery. Kidneys were harvested from fed mice and SGLT2 expression was analysed using Quantitative reverse-transcription PCR and immunofluorescence.\n\nResultsVSG mice displayed significantly improved glucose tolerance (AUC=103{+/-}6.8; AUC=66.6{+/-}2.9 in control and VSG mice, respectively; p<0.001), despite an absence of significant weight loss when compared to sham operated mice (p=0.37, Mann-Whitney test). Treatment of sham-operated mice with dapagliflozin (10 mg/kg) improved glucose tolerance. In contrast, dapagliflozin did not further improve glucose tolerance in VSG-operated mice. Moreover, qRT-PCR and immunofluorescence analysis on mouse kidneys demonstrated a significant lowering of SGLT2 expression at both the mRNA (n=7, p<0.0001) and protein (n=5, p=0.0007) levels four weeks after VSG.\n\nConclusionsVertical sleeve gastrectomy in lean animals causes a significant inhibition of SGLT2 expression in the kidney cortex. These findings are in line with our previous results on the effects of Duodenal Jejunal Bypass in lean rats, and point towards a physiologically-relevant gut-kidney axis. SGLT2 inhibition may thus be an important mechanism through which bariatric surgery improves glucose tolerance in man.

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Carotid body mitochondria exhibit normal oxygen affinity despite COX4I2 enrichment

Swiderska, A.; Murphy, M. P.; Galli, G. L.; Trafford, A. W.

2026-06-26 physiology 10.64898/2026.06.26.734739 medRxiv
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The carotid body (CB) is the key peripheral oxygen sensor. CB mitochondria are hypothesised to be uniquely adapted with unusually low intrinsic oxygen affinity which, in association with nitric oxide (NO) and reactive oxygen species signalling, enables acute responsiveness to hypoxia. However, CB mitochondrial physiology or intrinsic oxygen affinity have never been measured directly. We sought to address this key gap by isolating sheep CB mitochondria and comprehensively characterising their phenotype and contrasting them to a non-oxygen sensing tissue, left ventricular myocardium (LV). High resolution respirometry, liquid chromatography mass spectrometry, enzymatic assays and in silico modelling were used to characterise mitochondrial content, aerobic capacity, oxygen affinity, complex subunit abundance and activity, H2O2 production and NO sensitivity in ovine CB and LV. Mitochondrial oxygen affinity (P50 = 0.089 mmHg) was lower in the CB than the LV (P50 = 0.058 mmHg; p = 0.005). Whilst mitochondrial content was lower in the CB, CB mitochondria had higher respiratory rates and enzymatic activity than LV. H2O2 production and NO sensitivity were similar in the two tissues. While intrinsic mitochondrial oxygen affinity is slightly lower in the oxygen sensing CB than in the non-oxygen sensing LV, this difference is small. Hence, any role of mitochondria in CB oxygen sensing is not due to an intrinsic difference in the O2 affinity of cytochrome oxidase due to differential expression of its subunits. Instead, this work suggests that differences in O2 affinity in vivo are secondary to other factors, perhaps including NO, that alter mitochondrial O2 affinity.

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Hepatic HIF2α modulates extra-hepatic disease-associated phenotypes during metabolic dysfunction-associated steatotic liver disease

Holzner, L. M. W.; Korpershoek, R. M.; Niu, Y.; Cochrane, A.; Darwin, P. M.; Babuta, J.; Nazeer, A.; Castro, C.; Sowton, A. P.; Knapton, A. E.; Thackray, B. D.; Griffin, J. L.; Hall, Z.; Giussani, D. A.; Wüst, R. C. I.; Murray, A. J.

2026-04-06 physiology 10.64898/2026.04.02.716074 medRxiv
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Metabolic dysfunction-associated steatotic liver disease (MASLD) afflicts more than one-third of adults globally, contributing significantly to an increased cardiovascular disease risk. Further, patients with severe liver disease experience muscle weakness (sarcopenic obesity) and fatigue. Hypoxia-inducible factor 2 (HIF2) accumulates in the livers of MASLD patients and has been implicated in disease progression. Here we sought to understand the role of hepatic HIF2 in mediating hepatic and extra-hepatic features of MASLD. Using a well-validated obese mouse model of MASLD, we investigated the impact of hepatocyte-specific HIF2 deletion (hHIF2-/-) on hepatic, cardiac and skeletal muscle metabolism, and cardiac function. Over 28 weeks, mice were exposed to a high-fat, high-fructose, high-cholesterol (GAN) diet, which induced obesity alongside hepatic steatosis, fibrosis and inflammation. In contrast to observations in lean mouse models of liver disease, hHIF2-/- did not protect against MASLD, despite greater hepatic NADH-supported mitochondrial respiration and higher intracellular sphingomyelin levels. Instead, in the hearts of GAN-fed mice, hHIF2-/- caused diacylglycerol accumulation independent of diet, accumulation of long-chain acyl-carnitines and exacerbation of ceramide accumulation. Langendorff-perfused hearts from hHIF2-/- mice showed systolic and diastolic dysfunction, including 24% lower left ventricular developed pressure and 34% lower maximal rate of relaxation (dP/dtmin). However, isolated hearts from hHIF2-/- mice were protected against MASLD-associated sympathetic dominance, determined using autonomic receptor agonist stimulation. Both GAN-feeding and hHIF2-/- were associated with lower lean mass (14% and 5.4% lower than respective controls), whilst hHIF2-/- enhanced OXPHOS-associated protein levels in gastrocnemius muscle. Overall, hHIF2-/- resulted in detrimental extra-hepatic effects, including myocardial lipid accumulation, impaired cardiac function, and loss of whole-body lean mass, with no apparent protection against MASLD disease progression.

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GDF15 mediates renal cell plasticity in response to potassium depletion

Lasaad, S.; Walter, C.; Rafael, C.; Morla, L.; Doucet, A.; Picard, N.; Blanchard, A.; Fromes, Y.; Matot, B.; Crambert, G.; Cheval, L.

2022-12-27 physiology 10.1101/2022.12.27.521983 medRxiv
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A low potassium (K+) intake is a common situation in the population of the Westernized countries where processed food is prevalent in the diet. Here, we show that expression of GDF15, a TGF{beta}-related growth factor, is increased in renal tubular segments and gut parts of mice in response to low-K+ diet leading to a systemic elevation of its plasma and urine concentration. In human, under mild dietary K+ restriction, we observed that urine GDF15 excretion is correlated with plasma K+ level. Conversely to WT mice, adaptation to K+ restriction of GDF15-KO mice is not optimal, they do not increase their number of type A intercalated cell, responsible for K+ retention, and have a delayed renal K+ retention, leading to early development of hypokalemia. This renal effect of GDF15 depends on ErBb2 receptor, whose expression is increased in the kidney collecting ducts. We also observe that, in the absence of GDF15, the release of K+ by the muscles is blunted which is compensated by a loss of muscle mass. Thus, in this study, we showed that GDF15 plays a central role in the response to K+ restriction by orchestrating the modification of the cell composition of the collecting duct.

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Housing temperature dictates the systemic and tissue specific molecular responses to cancer in mice

Irazoki, A.; Frank, E.; Pham, T. C. P.; Braun, J. L.; Ehrlich, A. M.; Haid, M.; Riols, F.; Hansen, C. H. F.; Rydal Jorgensen, A.-S.; Andersen, N. R.; Hidalgo-Corbacho, L.; Meneses-Valdes, R.; Ali, M. S.; Raun, S. H.; Modvig, J. L.; Gallero, S.; Larsen, S.; Gerhart-Hines, Z.; Jensen, T. E.; Rohm, M.; Treebak, J. T.; Fajardo, V.; Sylow, L.

2024-06-02 physiology 10.1101/2024.05.29.596034 medRxiv
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Cancer cachexia is a metabolic condition affecting up to 80% of patients with cancer. Cachexia is mediated by reduced muscle and fat mass and impaired function, and it lowers survival for patients. With no approved drugs to treat cachexia, preclinical efforts focus on understanding the molecular mechanisms underlying this condition to reveal treatment targets. Housing laboratory mice at ambient temperature imposes cold stress, leading to induced thermogenic activity and consequent whole-body metabolic adaptations. Yet, the impact of housing temperature in in vivo preclinical cachexia remains unknown. We found that thermoneutral (TN) housing in C26 carcinoma-bearing (C26) mice affected lean and fat mass, but not muscle weight or force. TN housing improved glucose tolerance in C26 mice, while enhancing circulating abundance of FGF21 and IL-6. Thermogenic tissues, especially brown adipose tissue, exhibited housing temperature-dependent molecular responses to cancer in oxygen consumption, ATP levels and SERCA ATPase activity, which are all crucial for cancer-induced whole-body metabolic adaptations. We conclude that molecular and systemic adaptations to cancer in mice critically depend on housing temperature, which should be considered in the design and interpretation of preclinical cancer studies.

10
Cardiac microtubules mediate transverse (t)-tubule growth and homeostasis

Whitley, A. S.; Madders, G. W.; Livesey, A.; Ashik, A.; Uchida, K.; Prosser, B. L.; Trafford, A.; Dibb, K. M.

2026-08-19 physiology 10.64898/2026.08.16.745070 medRxiv
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Transverse (t)-tubules enable rapid, synchronous Ca release required for efficient cardiac contraction by bringing L-type Ca channels into close apposition with ryanodine receptors. In heart failure with reduced ejection fraction (HFrEF), t-tubule disorganisation and loss occur alongside cardiac microtubule remodelling, contributing to impaired Ca handling and contractile dysfunction. Despite their canonical function in contraction, how t-tubules develop is unknown. Microtubules support delivery of L-type Ca channels to t-tubules via Amphiphysin-II/BIN1, yet whether microtubules directly regulate t-tubule formation and maintenance is unclear. Here, we investigated a role for microtubules in t-tubule development and homeostasis. Neonatal rat ventricular myocytes (NRVMs), which lack endogenous t-tubules, were used as a reductionist model in which BIN1 overexpression induces nascent membrane tubules. Microtubule depolymerisation with nocodazole before BIN1 overexpression impaired BIN1-driven tubule formation, reducing tubule density and length. Dynein inhibition with EHNA produced similar effects, indicating a requirement for microtubule-based motor activity during tubule elongation. Knockdown of the microtubule +TIP tracking protein CLIP-170 also reduced BIN1-driven tubule density, implicating BIN1-CLIP-170-dependent microtubule capture in tubule initiation. Microtubules were also required to maintain existing tubules. In NRVMs with established BIN1-driven tubules, microtubule depolymerisation, microtubule stabilisation or dynein inhibition each reduced tubule density and length. Consistent with this, acute microtubule depolymerisation or stabilisation disrupted native t-tubule networks in isolated adult sheep left atrial myocytes. Together, these findings identify cardiac microtubules as active regulators of t-tubule architecture. We propose that BIN1-dependent tubule formation requires CLIP-170-mediated microtubule plus-end capture and dynein-dependent elongation, while ongoing microtubule dynamics are necessary to preserve mature t-tubule structure.

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Impaired renal base excretion in secretin receptor knock-out mice during prolonged base-loading

Jensen, T.; Andersen, J. F.; Trans, L. W.; Modvig, I. M.; Vitzthum, H.; Holst, J. J.; Hartmann, B.; Svendsen, S. L.; Soerensen, M. V.; Leipziger, J.; Berg, P.

2026-03-08 physiology 10.64898/2026.03.05.709818 medRxiv
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AimSecretin was recently found to play a pivotal role in the renal adaptation to acute base excess. Here, secretin increases pendrin-dependent HCO3- secretion from the beta-intercalated cells in the cortical collecting ducts. Whether secretin and its receptor play a role during prolonged base-loading remains unknown. MethodsUrine and blood acid-base analyses were carried out in secretin receptor (SCTR) KO and WT mice at baseline and after 1 and up to 8 days of base-loading with NaHCO3-enriched drinking water. Changes in pendrin protein abundance and function were assessed by immunoblotting and isolated tubule perfusion experiments. Plasma secretin levels and renal SCTR expression were assessed after 24 hours of acid/base-loading by radioimmunoassay and qPCR, respectively. ResultsSCTR KO mice responded with diminished urine alkalization and a lesser reduction of urinary acid excretion when base-loaded for 48 hours. Concordantly, SCTR KO mice presented with increased blood base retention compared with WTs. Base-loaded SCTR WT and KO mice showed comparable total pendrin protein abundance. Despite this, pendrin function was markedly lower in SCTR KO mice. Base-loaded mice had higher plasma secretin and renal SCTR levels compared with acid-loaded mice. Higher arterial HCO3- associated with higher renal SCTR mRNA expression. ConclusionPlasma secretin and renal SCTR levels are modulated by systemic acid-base status. Loss of the SCTR diminishes renal base excretion capacity and exacerbates systemic base accumulation during prolonged base-loading. These findings further support a central role of secretin and its receptor in the regulation of both acute and prolonged base excess.

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Atrial t-tubules adopt a specialist developmental state while alterations to Ca2+ buffering maintain systolic Ca2+ during postnatal development

Smith, C. E. R.; Clarke, J. D.; Quinn, C. J.; Sultan, Z.; Najem, H.; Denham, N. C.; Hutchings, D. C.; Madders, G. W. P.; Caldwell, J. L.; Toms, L. K.; Pinali, C.; Eisner, D. A.; Trafford, A. W.; Dibb, K. M.

2023-10-02 physiology 10.1101/2023.10.01.560329 medRxiv
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Transverse (t)-tubules ensure a uniform rise in calcium (Ca2+) and thus contraction in cardiac cells. Though more extensively studied in the ventricle, t-tubules also play a key role in the atria of large mammals, such as human, and their loss in heart failure is associated with impaired Ca2+ release and thus contractility. T-tubule restoration is therefore an ideal therapeutic target but the process of t-tubule formation is not understood. The aim of this study was to determine how t-tubules develop in the healthy atria and the impact this has on Ca2+ handling. Postnatal development was assessed in sheep from newborn through to adulthood. Atrial t-tubules were present at birth in the sheep atria and increased in density up until 3 months of age. In the latter part of development (3 months to adult) a lack of t-tubule growth but increase in cell width results in t-tubule density decreasing. In the newborn, despite reduced t-tubule density, we found the amplitude of the Ca2+ transient was maintained and this was associated with increases in the L-type Ca2+ current (ICa-L) and the Ca2+ content of the sarcoplasmic reticulum (SR). We suggest these changes are sufficient to overcome the elevated cytosolic Ca2+ buffering in the newborn and the decreased t-tubule density. We have shown the neonate atria is highly specialised to negate reduced central Ca2+ release through enhanced surface ICa-L and SR load. This maintains atrial function despite immature t-tubules highlighting important differences in Ca2+ handling in the newborn and heart failure atria where t-tubules are sparse.

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Urinary Sodium Wasting and Disrupted Collecting Duct Function in Mice with dRTA-Causing SLC4A1 Mutations

Mungara, P.; MacNaughton, K.; Ullah, A. S.; Essuman, G.; Chelangarimiyandoab, F.; Mumtaz, R.; Hennings, J. C.; Hubner, C. A.; Eladari, D.; Alexander, R. T.; Cordat, E.

2024-10-02 physiology 10.1101/2024.08.21.608692 medRxiv
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Distal renal tubular acidosis (dRTA) results in metabolic acidosis due to impaired urinary acidification and can also result in an unexplained urinary sodium-wasting phenotype. Here, we report the generation and characterization of a novel dRTA mutant mouse line, Ae1 L919X knockin (KI). Homozygous L919X KI mice exhibit typical dRTA features including a reduced ability to acidify urine in response to an acid load. This renal acidification defect was associated with a reduced number of Ae1-positive type A intercalated cells. To assess whether these mice exhibit urinary sodium-wasting as seen in some dRTA patients, homozygous KI L919X and the previously described R607H KI mice were fed a salt-depleted acid diet. In line with human patients, both mouse strains exhibited urinary sodium loss. Additionally, we identified increased expression of tight junction proteins claudin-4 and -10b, suggesting a compensatory paracellular pathway in the loop of Henle. Consistent with data from human patients, L919X KI mice displayed a milder phenotype than R607H KI mice. Our findings reveal that both mouse strains are appropriate models for dRTA with a urinary salt-wasting phenotype and a compensatory up-regulation of the paracellular pathway in the ascending limb of the loop of Henle.

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Renal arterial dysfunction, impaired pressure natriuresis and salt-sensitivity in a mouse model of Cushing syndrome

Costello, H. M.; Grenier, C.; Ivy, J. R.; Jones, N. K.; Stewart, K.; Holmes, M. C.; Livingstone, D. E.; Dhaun, N.; Bailey, M. A.

2024-12-11 physiology 10.1101/2024.12.11.625204 medRxiv
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BackgroundCushing Syndrome arises from endogenous overproduction of ACTH by a tumour or is acquired through chronic exposure to glucocorticoid medication. Hypertension is a major complication, increasing cardiovascular risk, but underlying mechanisms are not clearly defined. MethodsWe infused male C57BL/6J mice with ACTH or vehicle for 14-21 days, inducing cardinal features of Cushing Syndrome. The renal pressure natriuresis response was measured under anesthesia and ex vivo artery function assessed by myography. ResultsACTH infusion blunted the natriuretic and diuretic responses to incremental increases in blood pressure. Renal hemodynamics did not change with blood pressure in controls, but renal autoregulation was impaired in ACTH mice. The ex vivo contractile response of the renal artery to phenylephrine was diminished in Cushing Syndrome mice, as was endothelium-dependent and endothelium-independent relaxation. On 0.3% sodium diet, there was no evidence of sodium retention in ACTH-treated mice but the diurnal rhythm of sodium excretion was abnormal and mice had non-dipping BP. The Cushing Syndrome model also displayed enhanced salt preference and amplified salt-sensitive blood pressure. ConclusionCushing Syndrome induces a cluster of phenotypes impacting sodium homeostasis and blood pressure regulation. Hypertension, salt-sensitivity and non-dipping blood pressure are important cardiovascular risk factors, and, beyond Cushing Syndrome, our findings are relevant to obesity and the metabolic syndrome, in which tissue glucocorticoid homeostasis is abnormal.

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Gastrin releasing peptide and cholecystokinin employ different intracellular pathways to elicit similar safe Ca2+ signals

Salih, M.; Gerasimenko, J. V.; Gerasimenko, O. V.; Petersen, O. H.

2026-07-31 physiology 10.64898/2026.07.28.741212 medRxiv
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Repetitive cytosolic Ca2+ spikes in pancreatic acinar cells, elicited by low (physiological) concentrations of acetylcholine (ACh), cholecystokinin (CCK) and gastrin releasing peptide (GRP), control secretion of digestive enzymes, whereas high-intensity stimulation induces sustained Ca2+ elevation initiating acute pancreatitis. Since inositol trisphosphate (IP3) was discovered as an intracellular Ca2+ releasing messenger, it has been assumed that a major class of G-protein coupled receptors relies on this pathway. We have now compared the mechanisms of action of the three physiological stimulants, all acting on different receptors, but each coupled to the IP3 pathway. Low concentrations of CCK and GRP cannot elicit Ca2+ signals without co-operation of an additional intracellular mechanism. CCK-elicited Ca2+ signalling requires activation of intracellular receptors for nicotinic acid adenine dinucleotide phosphate (NAADP), whereas this is not the case for the action of GRP that nevertheless relies on the operation of CD38, the enzyme involved in the synthesis of both cyclic ADP ribose and NAADP. Even Ca2+ signals elicited by ACh are partially dependent on CD38. It is engagement of these additional non-IP3 pathways that allows low concentrations of secretagogues to elicit safe Ca2+ spiking and therefore secretion, obviating the need for potentially toxic high levels of secretagogues.

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Systemic Metabolic Rewiring in a Mouse Model of Left Ventricular Hypertrophy

Schmidt, A. V.; Thambadurai, T.; D'annibale, O.; Bharathi, S.; Wood, T.; Goetzman, E. S.; Stelzer, J. E.

2025-08-18 physiology 10.1101/2025.08.13.670184 medRxiv
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Left ventricular hypertrophy (LVH) refers to the pathological thickening of the myocardial wall, and is strongly associated with several adverse cardiac outcomes and sudden cardiac death. While the biomechanical drivers of LVH are well established, growing evidence points to a critical role for cardiac and systemic metabolism in modulating hypertrophic remodeling and disease pathogenesis. Despite the efficiency of fatty acid oxidation (FAO), LVH hearts preferentially increase glucose uptake and catabolism to drive glycolysis and oxidative phosphorylation (OXPHOS). Development of therapies to increase and enhance LFCA FAO are underway, with promising results. However, the mechanisms of systemic metabolic states and LCFA dynamics in the context of cardiac hypertrophy remain incompletely understood. Further, it is unknown to what extent cardiac metabolism is influenced by whole-body energy balance and lipid profiles, despite the common occurrence of lipotoxicity in LVH. In this study, we measured whole-body and cellular respiration along with analysis of lipid and glycogen stores in a mouse model of LVH. We found that loss of the cardiac-specific gene, Myosin binding protein-C3 (Mybpc3), resulted in depletion of adipose tissue, decreased mitochondrial function in skeletal muscle, increased lipid accumulation in both heart and liver, and loss of whole-body metabolic flux. We found that supplementation of exogenous LCFAs boosted LVH mitochondrial function and reversed cardiac lipid accumulation, but did not fully reverse the hypertrophied heart nor systemic metabolic phenotypes. This study indicates that the LVH phenotype caused systemic metabolic rewiring in Mybpc3-/- mice, and that exogenous LCFA supplementation boosted mitochondrial function in both cardiac and skeletal muscle.

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Role of Kir4.1/Kir5.1 in mediating Angiotensin-II (Ang-II)-induced stimulation of thiazide-sensitive Na-Cl cotransporter.

Wang, W.-H.; Duan, X.-P.; Meng, X.-X.; Xiao, Y.; Zhang, C.; Gu, R.; Lin, D.-H.

2024-07-23 physiology 10.1101/2024.07.19.604336 medRxiv
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BackgroundAngiotensin-II (Ang-II) perfusion stimulates Kir4.1/Kir5.1 in the distal-convoluted-tubule (DCT) and thiazide-sensitive Na-Cl-cotransporter (NCC). However, the role of Kir4.1/Kir5.1 in mediating the effect of Ang-II on NCC is not understood. MethodsWe used immunoblotting and patch-clamp-experiments to examine whether Ang-II-induced stimulation of NCC is achieved by activation of Kir4.1/Kir5.1 of the DCT using kidney-renal-tubule-specific AT1aR-knockout (Ks-AT1aR-KO), Ks-Kir4.1-knockout and the corresponding wild-type mice. ResultsAng-II perfusion for 1, 3 and 7 days progressively increased phosphor-NCC (pNCC) and total-NCC (tNCC) expression and the effect of Ang-II-perfusion on pNCC and tNCC was abolished in Ks-AT1aR-KO. Ang-II perfusion for 1-day robustly stimulates Kir4.1/Kir5.1 in the late DCT (DCT2) and to a lesser degree in the early DCT (DCT1), an effect was absent in Ks-AT1aR-KO mice. However, Ang-II perfusion for 7-days did not further stimulate Kir4.1/Kir5.1 in the DCT2 and only modestly increased Kir4.1/Kir5.1-mediated K+ currents in DCT1. Deletion of Kir4.1 not only significantly decreased the expression of pNCC and tNCC but also abolished the effect of 1-day Ang-II perfusion on the expression of phospho-with-no-lysine-kinase-4 (pWNK4), phosphor-ste-20-proline-alanine-rich-kinase (pSPAK), pNCC and tNCC. However, 7-days Ang-II perfusion was still able to significantly stimulate the expression of pSPAK, pWNK4, pNCC and tNCC, and increased thiazide-induced natriuresis in kidney-tubule-specific Kir4.1 knockout (Ks-Kir4.1 KO) mice without obvious changes in K+ channel activity in the DCT. ConclusionsShort-term Ang-II induced stimulation of pWNK4, pSPAK and pNCC depends on Kir4.1/Kir5.1 activity. However, long-term Ang-II is able to directly stimulate pWNK4, pSPAK and pNCC by a Kir4.1/Kir5.1 independent mechanism.

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Increased remodeling and impaired adaption to endurance exercise in desminopathy

Mossakowski, A. A.; Langer, H. T.; Bizieff, A.; Avey, A. M.; Zbinden-Foncea, H.; Hellerstein, M.; Baar, K.

2021-10-03 physiology 10.1101/2021.10.03.462939 medRxiv
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Desminopathy the most common intermediate filament disease in humans. Desmin is an essential part of the filamentous network that aligns myofibrils, anchors nuclei and mitochondria, and connects the z-discs and the sarcolemma. We created a rat model with a mutation in R349P DES, analog to the most frequent R350P DES missense mutation in humans. To examine the effects of a chronic, physiological exercise stimulus on desminopathic muscle, we subjected R349P DES rats and their wildtype (WT) and heterozygous littermates to a treadmill running regime. We saw significantly lower running capacity in DES rats that worsened over the course of the study. We found indicators of increased autophagic and proteasome activity with running in DES compared to WT. Stable isotope labeling and LC-MS analysis displayed distinct adaptations of the proteomes of WT and DES animals at baseline as well as with exercise: While key proteins of glycolysis, mitochondria and thick filaments increased their synthetic activity with running in WT, these proteins were higher at baseline in DES and did not change with running. The results suggest an impairment in adaption to chronic exercise in DES muscle and a subsequent exacerbation in the functional and histopathological phenotype.

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High Fat Diet Stimulates Beta-Oxidation, Alters Electrical Properties And Induces Adipogenicity Of Atria In Obese Mice

Suffee, N.; Baptista, E.; Piquereau, J.; Ponnaiah, M.; Doisne, N.; Ichou, F.; Lhomme, M.; Pichard, C.; Galand, V.; Mougenot, N.; Dilanian, G.; Lucats, L.; Balse, E.; Mericskay, M.; Le Goff, W.; Hatem, S. N.

2020-10-21 physiology 10.1101/2020.10.20.347161 medRxiv
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Metabolic disorders such as obesity are risk factors of atrial fibrillation, not only by sharing comorbidities but likely through their direct impact on atria, notably its adipogenicity. Here, we submitted mice that lack cardiac adipose tissue to a high fat diet and first studied the atrial metabolomic and lipidomic phenotypes using liquid chromatography-mass spectrometry. We found an increased consumption of free fatty acid by the beta-oxidation and an accumulation of long-chain lipids in atria of obese mice. Free fatty acid was the main substrate of mitochondrial respiration studied in the saponin-permeabilized atrial muscle. Conducted action potential recorded in atrial trabeculae was short, and ATP-sensitive potassium current was increased in perforated patch-clamp atrial myocytes of obese mice. There was histological and phenotypical evidence for an accumulation of adipose tissue in obese mice atria. Thus, an obesogenic diet transforms the energy metabolism, causes fat accumulation and induces electrical remodeling of atria myocardium. HIGHLIGHTS- Untargeted metabolomic and lipidomic analysis revealed that a high fat diet induces profound transformation of atrial energy metabolism with beta-oxidation activation and long-chain lipid accumulation. - Mitochondria respiration studied in atrial myocardial trabecula preferentially used Palmitoyl-CoA as energy substrate in obese mice. - Atria of obese mice become vulnerable to atrial fibrillation and show short action potential due to the activation of K-ATP dependent potassium current. - Adipocytes and fat molecular markers were detected in atria of obese mice together with an inflammatory profile consistence with a myocardial accumulation of fat.

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Activation of Vasopressin Receptor 1A by Vasopressin Enhances Myometrial Smooth Muscle Cell Excitability by Inhibiting the Potassium Channel SLO2.1

Ferreira, J. J.; Kent, L. N.; Gonzalez-Cota, A.; Peramsetty, N.; Whitter, G. C.; Li, E.; Spivak, S.; Ma, X. J.; England, S. K.; Santi, C. M.

2026-08-12 physiology 10.64898/2026.08.06.743275 medRxiv
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Arginine vasopressin (AVP) increases excitability of myometrial smooth muscle cells (MSMCs) through Gq-coupled AVP receptors. Although excitability requires membrane depolarization, the mechanisms linking AVP receptor activation to membrane depolarization and Ca{superscript 2} signaling are incompletely understood. Here, we show that AVPR1 is the predominant AVP receptor in primary MSMCs. In Xenopus oocytes, AVP signals through AVPR1 to inhibit SLO2.1-mediated potassium currents, reducing current amplitude to approximately 60% of control currents. Consistent with suppression of a hyperpolarizing conductance, AVP depolarized a myometrial cell line (hTERT-HM) and increased intracellular Ca{superscript 2} signaling. Analysis of Ca{superscript 2} dynamics revealed that the initial Ca{superscript 2} peak was largely preserved under conditions limiting extracellular Ca{superscript 2} entry, consistent with intracellular store release. Conversely, the oscillatory phase depended on extracellular Ca{superscript 2} influx and was reduced by SLO2.1 knockdown. Together, these findings support a model in which AVP preferentially signals through AVPR1A to inhibit SLO2.1, depolarize myometrial cells, enhance VDCC-dependent Ca{superscript 2} entry, and promote excitability, enhancing conditions for uterine contraction.