1. Academic Validation
  2. Mertk Interacts with Tim-4 to Enhance Tim-4-Mediated Efferocytosis

Mertk Interacts with Tim-4 to Enhance Tim-4-Mediated Efferocytosis

  • Cells. 2020 Jul 6;9(7):1625. doi: 10.3390/cells9071625.
Byeongjin Moon 1 2 Juyeon Lee 1 2 Sang-Ah Lee 1 2 Chanhyuk Min 1 2 Hyunji Moon 1 2 Deokhwan Kim 1 2 Susumin Yang 1 2 Heera Moon 1 Jaeseon Jeon 1 Young-Eun Joo 3 Daeho Park 1 2
Affiliations

Affiliations

  • 1 School of Life Sciences, Gwangju Institute of Science and Technology, Gwangju 61005, Korea.
  • 2 Center for Cell Mechanobiology, Gwangju Institute of Science and Technology, Gwangju 61005, Korea.
  • 3 Department of Internal Medicine, Chonnam National Univerity, Gwangju 61469, Korea.
Abstract

Apoptotic cells expressing phosphatidylserine (PS) on their cell surface are directly or indirectly recognized by phagocytes through PS-binding proteins. The PS-binding protein Tim-4 secures apoptotic cells to phagocytes to facilitate the engulfment of apoptotic cells. However, the molecular mechanism by which Tim-4 transduces signals to phagocytes during Tim-4-mediated efferocytosis is incompletely understood. Here, we report that Tim-4 collaborates with Mertk during efferocytosis through a biochemical interaction with Mertk. Proximal localization between the two proteins in phagocytes was observed by immunofluorescence and proximal ligation assays. Physical association between Tim-4 and Mertk, which was mediated by an interaction between the IgV domain of Tim-4 and the fibronectin type-III domain of Mertk, was also detected with immunoprecipitation. Furthermore, the effect of Mertk on Tim-4-mediated efferocytosis was abolished by GST-MertkFnIII, a soluble form of the fibronectin type-III domain of Mertk that disrupts the interaction between Tim-4 and Mertk. Taken together, the results from our study suggest that a physical interaction between Tim-4 and Mertk is necessary for Mertk to enhance efferocytosis mediated by Tim-4.

Keywords

Mertk; Tim-4; apoptosis; efferocytosis; engulfment; phosphatidylserine; receptor.

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