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Journal Article

Imitating evolution’s tinkering by protein engineering reveals extension of human galectin-7 activity

Anna-Kristin Ludwig; Malwina Michalak; Adele Gabba; Tanja J. Kutzner; Donella M. Beckwith; Forrest G. FitzGerald; Gabriel García Caballero; Joachim C. Manning; Mark Kriegsmann; Herbert Kaltner; Paul V. Murphy; Maré Cudic; Jürgen Kopitz; Hans-Joachim Gabius
Histochemistry and Cell Biology · Vol. 156, Issue 3 · pp. 253-272 · 2021

Abstract

Wild-type lectins have distinct types of modular design. As a step to explain the physiological importance of their special status, hypothesis-driven protein engineering is used to generate variants. Concerning adhesion/growth-regulatory galectins, non-covalently associated homodimers are commonly encountered in vertebrates. The homodimeric galectin-7 (Gal-7) is a multifunctional context-dependent modulator. Since the possibility of conversion from the homodimer to hybrids with other galectin domains, i.e. from Gal-1 and Gal-3, has recently been discovered, we designed Gal-7-based constructs, i.e. stable (covalently linked) homo- and heterodimers. They were produced and purified by affinity chromatography, and the sugar-binding activity of each lectin unit proven by calorimetry. Inspection of profiles of binding of labeled galectins to an array-like platform with various cell types, i.e. sections of murine epididymis and jejunum, and impact on neuroblastoma cell proliferation revealed no major difference between natural and artificial (stable) homodimers. When analyzing heterodimers, acquisition of altered properties was seen. Remarkably, binding properties and activity as effector can depend on the order of arrangement of lectin domains (from N- to C-termini) and on the linker length. After dissociation of the homodimer, the Gal-7 domain can build new functionally active hybrids with other partners. This study provides a clear direction for research on defining the full range of Gal-7 functionality and offers the perspective of testing applications for engineered heterodimers.

Bibliographic Information

JournalHistochemistry and Cell Biology
PublisherSpringer
Publication Date2021-09-01
Publication Year2021
Volume156
Issue3
Pages253-272
Document TypeJournal Article
eISSN1432-119X
DOI10.1007/s00418-021-02004-w

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NARA Access Coverage1958-01-01~Current
Journal Homepagehttps://www.springer.com/journal/418
Publisher PageOpen Publisher Page
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