SLC4A7/NBCn1 maintains intracellular pH to support mTORC1 activity and antibody-secreting cell differentiation

Antibody-producing plasmablasts (PB) and plasma cells (PC) are critical for humoral immunity, autoimmunity and vaccine responses. Despite the importance of environmental stressors in regulating humoral immune responses, the influence of pH on PB and PC differentiation remains elusive. Here, we identify SLC4A7/NBCn1, a Na+/HCO3– cotransporter, as a selective regulator of PB differentiation in vitro. SLC4A7 deletion also impairs the formation of antibody secreting cells (ASCs) and antibody responses in mice in vivo following immunization and influenza A virus infection. Mechanistically, SLC4A7 deletion results in intracellular acidification and lysosomal alkalinization, and is associated with impaired function of the mechanistic target of rapamycin complex 1 (mTORC1). Enforcing mTORC1 activation in SLC4A7-deficient B cells or B cells in which intracellular pH is acidified by blocking Na+/H+ exchanger (NHE) function restores PB differentiation in vitro. Moreover, ASC differentiation and antibody responses are impaired under conditions of extracellular acidosis in vitro and in a mouse model of metabolic acidosis. Altogether, we identify a critical relationship between intracellular pH regulation through SLC4A7 and mTORC1-dependent ASC differentiation and humoral immunity. Environmental cues, such as pH, determine cellular differentiation and function, including that of immune cells. Here the authors identify SLC4A7, a Na + /HCO3–cotransporter as a critical and specific regulator of plasmablast differentiation genetic deletion of which in mice impairing antibody responses.

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Publication Details

Journal
Nature Communications
Published
2026-09-11
DOI
https://doi.org/10.1038/s41467-026-77588-9
Primary Topic
Ion Transport and Channel Regulation
Type
article
Field-Weighted Citation Impact
0.00

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article

SLC4A7/NBCn1 maintains intracellular pH to support mTORC1 activity and antibody-secreting cell differentiation

Ebbe Boedtkjer, Maxwell McDermott, Miki Jishage, Marcus J. Hines et al.
Nature Communications
Ion Transport and Channel Regulation
article

SLC4A7/NBCn1 maintains intracellular pH to support mTORC1 activity and antibody-secreting cell differentiation

Ebbe Boedtkjer, Maxwell McDermott, Miki Jishage, Marcus J. Hines, Anthony Tao, Yin‐Hu Wang, Sergei B. Koralov, Stefan Feske, Thomas Boehringer, Li Zhong, Ke Hu
article en

Abstract

Antibody-producing plasmablasts (PB) and plasma cells (PC) are critical for humoral immunity, autoimmunity and vaccine responses. Despite the importance of environmental stressors in regulating humoral immune responses, the influence of pH on PB and PC differentiation remains elusive. Here, we identify SLC4A7/NBCn1, a Na+/HCO3– cotransporter, as a selective regulator of PB differentiation in vitro. SLC4A7 deletion also impairs the formation of antibody secreting cells (ASCs) and antibody responses in mice in vivo following immunization and influenza A virus infection. Mechanistically, SLC4A7 deletion results in intracellular acidification and lysosomal alkalinization, and is associated with impaired function of the mechanistic target of rapamycin complex 1 (mTORC1). Enforcing mTORC1 activation in SLC4A7-deficient B cells or B cells in which intracellular pH is acidified by blocking Na+/H+ exchanger (NHE) function restores PB differentiation in vitro. Moreover, ASC differentiation and antibody responses are impaired under conditions of extracellular acidosis in vitro and in a mouse model of metabolic acidosis. Altogether, we identify a critical relationship between intracellular pH regulation through SLC4A7 and mTORC1-dependent ASC differentiation and humoral immunity. Environmental cues, such as pH, determine cellular differentiation and function, including that of immune cells. Here the authors identify SLC4A7, a Na + /HCO3–cotransporter as a critical and specific regulator of plasmablast differentiation genetic deletion of which in mice impairing antibody responses.

Nature Communications
Aarhus University (DK), New York University (US)
National Institutes of Health
Openalex Percentile: Top 18%
Ion Transport and Channel Regulation
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