Chip-based sensing for release of unprocessed cell surface proteins in vitro and in serum and its (patho)physiological relevance

Author:

Müller Günter A.1ORCID,Herling Andreas W.2,Stemmer Kerstin1,Lechner Andreas34,Tschöp Matthias H.156

Affiliation:

1. Institute for Diabetes and Obesity, Helmholtz Diabetes Center at Helmholtz Zentrum München, Neuherberg, Germany

2. Sanofi Deutschland GmbH, Diabetes Research Division, Frankfurt am Main, Germany

3. Diabetes Research Group, Medizinische Klinik IV, Medical Center, Ludwig-Maximilians-Universität München (Klinikum der Universität München), München, Germany

4. Clinical Cooperation Group Type 2 Diabetes, Helmholtz Zentrum München, Oberschleissheim/Neuherberg, Germany

5. Division of Metabolic Diseases, Department of Medicine, Technische Universität München, München, Germany

6. German Center for Diabetes Research, Oberschleissheim/Neuherberg, Germany

Abstract

To study the possibility that certain components of eukaryotic plasma membranes are released under certain (patho)physiological conditions, a chip-based sensor was developed for the detection of cell surface proteins, which are anchored at the outer leaflet of eukaryotic plasma membranes by a covalently attached glycolipid, exclusively, and might be prone to spontaneous or regulated release on the basis of their amphiphilic character. For this, unprocessed, full-length glycosylphosphatidylinositol-anchored proteins (GPI-AP), together with associated phospholipids, were specifically captured and detected by a chip- and microfluidic channel-based sensor, leading to changes in phase and amplitude of surface acoustic waves (SAW) propagating over the chip surface. Unprocessed GPI-AP in complex with lipids were found to be released from rat adipocyte plasma membranes immobilized on the chip, which was dependent on the flow rate and composition of the buffer stream. The complexes were identified in the incubation medium of primary rat adipocytes, in correlation to the cell size, and in rat as well as human serum. With rats, the measured changes in SAW phase shift, reflecting specific mass/size or amount of the unprocessed GPI-AP in complex with lipids, and SAW amplitude, reflecting their viscoelasticity, enabled the differentiation between the lean and obese (high-fat diet) state, and the normal (Wistar) and hyperinsulinemic (Zucker fatty) as well as hyperinsulinemic hyperglycemic (Zucker diabetic fatty) state. Thus chip-based sensing for complexes of unprocessed GPI-AP and lipids reveals the inherently labile anchorage of GPI-AP at plasma membranes and their susceptibility for release in response to (intrinsic/extrinsic) cues of metabolic relevance and may, therefore, be useful for monitoring of (pre-)diabetic disease states.

Funder

Alexander von Humboldt-Stiftung (Humboldt Foundation)

Publisher

American Physiological Society

Subject

Physiology (medical),Physiology,Endocrinology, Diabetes and Metabolism

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