Presenilin 1 mediates the turnover of telencephalin in hippocampal neurons via an autophagic degradative pathway

Author:

Esselens Cary1,Oorschot Viola2,Baert Veerle1,Raemaekers Tim1,Spittaels Kurt3,Serneels Lutgarde4,Zheng Hui5,Saftig Paul6,De Strooper Bart4,Klumperman Judith2,Annaert Wim1

Affiliation:

1. Membrane Trafficking Laboratory, Center for Human Genetics/VIB04, KULeuven, 3000 Leuven, Belgium

2. Department of Cell Biology, University Medical Center Utrecht, 3584CX Utrecht, Netherlands

3. Galapagos Genomics, B-2800 Mechelen, Belgium

4. Neuronal Cell Biology and Gene Transfer Laboratory, Center for Human Genetics/VIB04, KULeuven, 3000 Leuven, Belgium

5. Division of Neuroscience, Baylor College of Medicine, Houston, TX 77030

6. Institute of Biochemistry, University of Kiel, D-24118 Kiel, Germany

Abstract

Presenilin 1 (PS1) interacts with telencephalin (TLN) and the amyloid precursor protein via their transmembrane domain (Annaert, W.G., C. Esselens, V. Baert, C. Boeve, G. Snellings, P. Cupers, K. Craessaerts, and B. De Strooper. 2001. Neuron. 32:579–589). Here, we demonstrate that TLN is not a substrate for γ-secretase cleavage, but displays a prolonged half-life in PS1−/− hippocampal neurons. TLN accumulates in intracellular structures bearing characteristics of autophagic vacuoles including the presence of Apg12p and LC3. Importantly, the TLN accumulations are suppressed by adenoviral expression of wild-type, FAD-linked and D257A mutant PS1, indicating that this phenotype is independent from γ-secretase activity. Cathepsin D deficiency also results in the localization of TLN to autophagic vacuoles. TLN mediates the uptake of microbeads concomitant with actin and PIP2 recruitment, indicating a phagocytic origin of TLN accumulations. Absence of endosomal/lysosomal proteins suggests that the TLN-positive vacuoles fail to fuse with endosomes/lysosomes, preventing their acidification and further degradation. Collectively, PS1 deficiency affects in a γ-secretase–independent fashion the turnover of TLN through autophagic vacuoles, most likely by an impaired capability to fuse with lysosomes.

Publisher

Rockefeller University Press

Subject

Cell Biology

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