Dielectric properties of plasma membrane: A signature for dyslipidemia in diabetes mellitus
Dielectric properties of a living biological membrane play crucial role indicating the status of the cell in pathogenic or healthy condition. A distinct variation in membrane capacitance and impedance was observed for peripheral blood mononuclear cell (PBMC) suspensions for diabetic and diabetic-dys...
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Published in | Archives of biochemistry and biophysics Vol. 635; pp. 27 - 36 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
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United States
Elsevier Inc
01.12.2017
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ISSN | 0003-9861 1096-0384 1096-0384 |
DOI | 10.1016/j.abb.2017.10.002 |
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Abstract | Dielectric properties of a living biological membrane play crucial role indicating the status of the cell in pathogenic or healthy condition. A distinct variation in membrane capacitance and impedance was observed for peripheral blood mononuclear cell (PBMC) suspensions for diabetic and diabetic-dyslipidemic subjects compared to healthy control. Low frequency region were explicitly considered in electrical analysis to address complex membrane dielectric factors that alter the system capacitance of a PBMC suspension. Such variation was marked in size, morphology and membrane function of PBMCs for control and diseased cases. Scanning electron microscopy (SEM) and atomic force microscopy (AFM) studies reveal significant alteration in surface morphology of PBMCs in diseased condition. Side scatter of flow cytometry reveals complexity of PBMCs in diseased condition. Changes in size between groups were not found by SEM and forward scatter. Functional alteration in PBMCs was manifested by significant changes in cell membrane properties like Na+, K+ ATPase and Ca2+, Mg2+ ATPase activity, reduced plasma membrane fluidity and changes in intracellular Ca2+ content, which bear significant correlation in diabetic and diabetic dyslipidemic subjects. Therefore, dielectric parameters of PBMCs in diabetic-dyslipidemic challenges may led to interesting correlation opening the possibility of identifying crucial signature biomarkers.
•Plasma membrane dielectric property is a crucial factor determining membrane morphology and functions.•Diabetes with dyslipidemia induces significantly altered membrane dielectric properties (capacitance and impedance).•Diabetes and dyslipidemia alters the surface morphology of plasma membrane.•Membrane functions like fluidity and activity of ATPase proton pumps are significantly altered in diabetic dyslipidemia. |
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AbstractList | Dielectric properties of a living biological membrane play crucial role indicating the status of the cell in pathogenic or healthy condition. A distinct variation in membrane capacitance and impedance was observed for peripheral blood mononuclear cell (PBMC) suspensions for diabetic and diabetic-dyslipidemic subjects compared to healthy control. Low frequency region were explicitly considered in electrical analysis to address complex membrane dielectric factors that alter the system capacitance of a PBMC suspension. Such variation was marked in size, morphology and membrane function of PBMCs for control and diseased cases. Scanning electron microscopy (SEM) and atomic force microscopy (AFM) studies reveal significant alteration in surface morphology of PBMCs in diseased condition. Side scatter of flow cytometry reveals complexity of PBMCs in diseased condition. Changes in size between groups were not found by SEM and forward scatter. Functional alteration in PBMCs was manifested by significant changes in cell membrane properties like Na+, K+ ATPase and Ca2+, Mg2+ ATPase activity, reduced plasma membrane fluidity and changes in intracellular Ca2+ content, which bear significant correlation in diabetic and diabetic dyslipidemic subjects. Therefore, dielectric parameters of PBMCs in diabetic-dyslipidemic challenges may led to interesting correlation opening the possibility of identifying crucial signature biomarkers.
•Plasma membrane dielectric property is a crucial factor determining membrane morphology and functions.•Diabetes with dyslipidemia induces significantly altered membrane dielectric properties (capacitance and impedance).•Diabetes and dyslipidemia alters the surface morphology of plasma membrane.•Membrane functions like fluidity and activity of ATPase proton pumps are significantly altered in diabetic dyslipidemia. Dielectric properties of a living biological membrane play crucial role indicating the status of the cell in pathogenic or healthy condition. A distinct variation in membrane capacitance and impedance was observed for PBMC suspensions for diabetic and diabetic-dyslipidemic subjects compared to healthy control. Low frequency region were explicitly considered in electrical analysis to address complex membrane dielectric factors that alter the system capacitance of a PBMC suspension. Such variation was marked in size, morphology and membrane function of PBMCs for control and diseased cases. SEM and AFM studies reveal significant alteration in surface morphology of PBMCs in diseased condition. Side scatter of flow cytometry reveals complexity of PBMCs in diseased condition. Changes in size between groups were not found by SEM and forward scatter. Functional alteration in PBMCs was manifested by significant changes in cell membrane properties like Na+, K+ ATPase and Ca2+, Mg2+ ATPase activity, reduced plasma membrane fluidity and changes in intracellular Ca2+ content, which bear significant correlation in diabetic and diabetic dyslipidemic subjects. Therefore, dielectric parameters of PBMCs in diabetic-dyslipidemic challenges may led to interesting correlation opening the possibility of identifying crucial signature biomarkers. Dielectric properties of a living biological membrane play crucial role indicating the status of the cell in pathogenic or healthy condition. A distinct variation in membrane capacitance and impedance was observed for peripheral blood mononuclear cell (PBMC) suspensions for diabetic and diabetic-dyslipidemic subjects compared to healthy control. Low frequency region were explicitly considered in electrical analysis to address complex membrane dielectric factors that alter the system capacitance of a PBMC suspension. Such variation was marked in size, morphology and membrane function of PBMCs for control and diseased cases. Scanning electron microscopy (SEM) and atomic force microscopy (AFM) studies reveal significant alteration in surface morphology of PBMCs in diseased condition. Side scatter of flow cytometry reveals complexity of PBMCs in diseased condition. Changes in size between groups were not found by SEM and forward scatter. Functional alteration in PBMCs was manifested by significant changes in cell membrane properties like Na , K ATPase and Ca , Mg ATPase activity, reduced plasma membrane fluidity and changes in intracellular Ca content, which bear significant correlation in diabetic and diabetic dyslipidemic subjects. Therefore, dielectric parameters of PBMCs in diabetic-dyslipidemic challenges may led to interesting correlation opening the possibility of identifying crucial signature biomarkers. Dielectric properties of a living biological membrane play crucial role indicating the status of the cell in pathogenic or healthy condition. A distinct variation in membrane capacitance and impedance was observed for peripheral blood mononuclear cell (PBMC) suspensions for diabetic and diabetic-dyslipidemic subjects compared to healthy control. Low frequency region were explicitly considered in electrical analysis to address complex membrane dielectric factors that alter the system capacitance of a PBMC suspension. Such variation was marked in size, morphology and membrane function of PBMCs for control and diseased cases. Scanning electron microscopy (SEM) and atomic force microscopy (AFM) studies reveal significant alteration in surface morphology of PBMCs in diseased condition. Side scatter of flow cytometry reveals complexity of PBMCs in diseased condition. Changes in size between groups were not found by SEM and forward scatter. Functional alteration in PBMCs was manifested by significant changes in cell membrane properties like Na+, K+ ATPase and Ca2+, Mg2+ ATPase activity, reduced plasma membrane fluidity and changes in intracellular Ca2+ content, which bear significant correlation in diabetic and diabetic dyslipidemic subjects. Therefore, dielectric parameters of PBMCs in diabetic-dyslipidemic challenges may led to interesting correlation opening the possibility of identifying crucial signature biomarkers.Dielectric properties of a living biological membrane play crucial role indicating the status of the cell in pathogenic or healthy condition. A distinct variation in membrane capacitance and impedance was observed for peripheral blood mononuclear cell (PBMC) suspensions for diabetic and diabetic-dyslipidemic subjects compared to healthy control. Low frequency region were explicitly considered in electrical analysis to address complex membrane dielectric factors that alter the system capacitance of a PBMC suspension. Such variation was marked in size, morphology and membrane function of PBMCs for control and diseased cases. Scanning electron microscopy (SEM) and atomic force microscopy (AFM) studies reveal significant alteration in surface morphology of PBMCs in diseased condition. Side scatter of flow cytometry reveals complexity of PBMCs in diseased condition. Changes in size between groups were not found by SEM and forward scatter. Functional alteration in PBMCs was manifested by significant changes in cell membrane properties like Na+, K+ ATPase and Ca2+, Mg2+ ATPase activity, reduced plasma membrane fluidity and changes in intracellular Ca2+ content, which bear significant correlation in diabetic and diabetic dyslipidemic subjects. Therefore, dielectric parameters of PBMCs in diabetic-dyslipidemic challenges may led to interesting correlation opening the possibility of identifying crucial signature biomarkers. |
Author | Bhattacharyya, Maitree Chowdhury, Subhankar Das, Chirantan Chattopadhyay, Sanatan Ghoshal, Kakali Chakraborty, Subhadip |
Author_xml | – sequence: 1 givenname: Kakali surname: Ghoshal fullname: Ghoshal, Kakali organization: Department of Biochemistry, University of Calcutta, 35, Ballygunge Circular Road, Kolkata 700019, India – sequence: 2 givenname: Subhadip surname: Chakraborty fullname: Chakraborty, Subhadip organization: Department of Electronic Science, University of Calcutta, 92, Acharya Prafulla Chandra Rd, Kolkata 700009, India – sequence: 3 givenname: Chirantan surname: Das fullname: Das, Chirantan organization: Department of Electronic Science, University of Calcutta, 92, Acharya Prafulla Chandra Rd, Kolkata 700009, India – sequence: 4 givenname: Sanatan surname: Chattopadhyay fullname: Chattopadhyay, Sanatan organization: Department of Electronic Science, University of Calcutta, 92, Acharya Prafulla Chandra Rd, Kolkata 700009, India – sequence: 5 givenname: Subhankar surname: Chowdhury fullname: Chowdhury, Subhankar organization: Institute of Postgraduate Medical Education and Research, Government of West Bengal, 224, Acharyya Jagadish Chandra Bose Road, Kolkata 700020, India – sequence: 6 givenname: Maitree surname: Bhattacharyya fullname: Bhattacharyya, Maitree email: bmaitree@gmail.com organization: Department of Biochemistry, University of Calcutta, 35, Ballygunge Circular Road, Kolkata 700019, India |
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SubjectTerms | adenosinetriphosphatase atomic force microscopy biomarkers calcium capacitance Cell Membrane - pathology Cell Membrane - ultrastructure Cells, Cultured diabetes mellitus Diabetes Mellitus - pathology Diabetes Mellitus - physiopathology dielectric properties Dyslipidemias - pathology Dyslipidemias - physiopathology Electric Capacitance Electric Impedance enzyme activity flow cytometry Humans hyperlipidemia Leukocytes, Mononuclear - pathology Leukocytes, Mononuclear - ultrastructure magnesium Membrane Fluidity mononuclear leukocytes plasma membrane potassium scanning electron microscopy sodium |
Title | Dielectric properties of plasma membrane: A signature for dyslipidemia in diabetes mellitus |
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