Yang Lila, Hansen Falkesgaard Maria, Thulstrup Peter Waaben, Walmod Peter Schledermann, Lo Leggio Leila, Krighaar Rasmussen Kim
Biological Chemistry, Department of Chemistry, University of Copenhagen, Copenhagen, Denmark.
Laboratory of Neural Plasticity, Department of Neuroscience and Pharmacology, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen, Denmark.
PeerJ. 2017 Jul 7;5:e3550. doi: 10.7717/peerj.3550. eCollection 2017.
The fibronectin leucine rich transmembrane (FLRT) protein family consists in humans of 3 proteins, FLRT1, -2, and -3. The FLRT proteins contain two extracellular domains separated by an unstructured linker. The most membrane distal part is a leucine rich repeat (LRR) domain responsible for both and -interactions, whereas the membrane proximal part is a fibronectin type III (FnIII) domain responsible for a -interaction with members of the fibroblast growth factor receptor 1 (FGFR1) family, which results in FGFR tyrosine kinase activation. Whereas the structures of FLRT LRR domains from various species have been determined, the expression and purification of recombinant FLRT FnIII domains, important steps for further structural and functional characterizations of the proteins, have not yet been described. Here we present a protocol for expressing recombinant FLRT-FnIII domains in inclusion bodies in . His-tags permitted affinity purification of the domains, which subsequently were refolded on a Ni-NTA agarose column by reducing the concentration of urea. The refolding was confirmed by circular dichroism (CD) and H-NMR. By thermal unfolding experiments we show that a strand-strand cystine bridge has significant effect on the stability of the FLRT FnIII fold. We further show by Surface Plasmon Resonance that all three FnIII domains bind to FGFR1, and roughly estimate a for each domain, all s being in the µM range.
纤连蛋白富含亮氨酸跨膜(FLRT)蛋白家族在人类中由3种蛋白组成,即FLRT1、-2和-3。FLRT蛋白包含两个由无结构连接子分隔的细胞外结构域。最靠近膜的部分是富含亮氨酸重复序列(LRR)结构域,负责 和 相互作用,而靠近膜的部分是纤连蛋白III型(FnIII)结构域,负责与成纤维细胞生长因子受体1(FGFR1)家族成员进行 相互作用,这会导致FGFR酪氨酸激酶激活。尽管已经确定了来自不同物种的FLRT LRR结构域的结构,但重组FLRT FnIII结构域的表达和纯化,这是对该蛋白进行进一步结构和功能表征的重要步骤,尚未见报道。在此,我们展示了一种在 中表达包涵体形式的重组FLRT - FnIII结构域的方案。His标签允许对这些结构域进行亲和纯化,随后通过降低尿素浓度在Ni - NTA琼脂糖柱上对其进行重折叠。通过圆二色性(CD)和H - NMR证实了重折叠。通过热变性实验,我们表明链间胱氨酸桥对FLRT FnIII折叠的稳定性有显著影响。我们还通过表面等离子体共振表明,所有三个FnIII结构域都与FGFR1结合,并大致估算了每个结构域的 ,所有 均在µM范围内。