Calpain-1 knockout reveals broad effects on erythrocyte deformability and physiology

Author:

Wieschhaus Adam123,Khan Anwar3,Zaidi Asma4,Rogalin Henry1,Hanada Toshihiko1,Liu Fei5,De Franceschi Lucia6,Brugnara Carlo7,Rivera Alicia7,Chishti Athar H.12

Affiliation:

1. Department of Molecular Physiology and Pharmacology, Tufts University School of Medicine, Boston, MA 02111, U.S.A.

2. Sackler School of Graduate Biomedical Sciences, Programs in Physiology, Pharmacology, and Microbiology, Tufts University, Boston, MA 02111, U.S.A.

3. Department of Pharmacology, University of Illinois College of Medicine, Chicago, IL 60612, U.S.A.

4. Department of Biochemistry, Kansas City University of Medicine and Biosciences, Kansas City, MO 64106, U.S.A.

5. Molecular and Integrative Physiological Sciences, Department of Environmental Health, Harvard School of Public Health, Boston, MA 02115, U.S.A.

6. Department of Medicine, University of Verona, Piazzale L.A. Scuro 10, Verona 37134, Italy

7. Department of Laboratory Medicine, Boston Children's Hospital, Harvard Medical School, Boston, MA 02115, U.S.A.

Abstract

Pharmacological inhibitors of cysteine proteases have provided useful insights into the regulation of calpain activity in erythrocytes. However, the precise biological function of calpain activity in erythrocytes remains poorly understood. Erythrocytes express calpain-1, an isoform regulated by calpastatin, the endogenous inhibitor of calpains. In the present study, we investigated the function of calpain-1 in mature erythrocytes using our calpain-1-null [KO (knockout)] mouse model. The calpain-1 gene deletion results in improved erythrocyte deformability without any measurable effect on erythrocyte lifespan in vivo. The calcium-induced sphero-echinocyte shape transition is compromised in the KO erythrocytes. Erythrocyte membrane proteins ankyrin, band 3, protein 4.1R, adducin and dematin are degraded in the calcium-loaded normal erythrocytes but not in the KO erythrocytes. In contrast, the integrity of spectrin and its state of phosphorylation are not affected in the calcium-loaded erythrocytes of either genotype. To assess the functional consequences of attenuated cytoskeletal remodelling in the KO erythrocytes, the activity of major membrane transporters was measured. The activity of the K+–Cl− co-transporter and the Gardos channel was significantly reduced in the KO erythrocytes. Similarly, the basal activity of the calcium pump was reduced in the absence of calmodulin in the KO erythrocyte membrane. Interestingly, the calmodulin-stimulated calcium pump activity was significantly elevated in the KO erythrocytes, implying a wider range of pump regulation by calcium and calmodulin. Taken together, and with the atomic force microscopy of the skeletal network, the results of the present study provide the first evidence for the physiological function of calpain-1 in erythrocytes with therapeutic implications for calcium imbalance pathologies such as sickle cell disease.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

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