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Fujii, K. K.

Publications and source records attributed to Fujii, K. K..

4 recordsLinked to original sources

Composition-controlled artificial collagen shows opposing roles of collagen-binding integrins and discoidin domain receptors in neuronal differentiation of PC12 cells

Collagen, a major component of the extracellular matrix, regulates cellular behaviors, such as adhesion, differentiation, and angiogenesis. These functions are mediated by interactions between specific amino acid motifs within the collagen triple-helical structure and collagen-binding biomolecules. These include cell-surface receptors, such as integrins, discoidin domain receptors (DDRs), and syndecans, a family of transmembrane heparan sulfate proteoglycans (HSPGs). Signals mediated by these receptors are integrated to regulate cell fate. However, native collagen simultaneously presents multiple receptor-binding motifs, making it difficult to isolate receptor-specific functions and to evaluate receptor crosstalk. Here, we introduce a composition-controlled artificial collagen matrix platform that enables independent tuning of multiple receptor-binding motifs within a constant triple-helical scaffold. This material was produced by disulfide crosslinking of chemically synthesized collagen-like triple-helical peptides, each bearing a single defined receptor-binding sequence. By varying the mixing ratios of these peptides before crosslinking, we systematically controlled the composition of receptor-binding motifs within the matrices. We applied this platform to nerve growth factor-dependent neuronal differentiation of PC12 cells, a process supported by collagen. Matrices containing only integrin-binding sequences were sufficient to support this differentiation. Incorporation of an HSPG-binding sequence had little additional effect, whereas incorporation of a DDR-binding sequence suppressed integrin-mediated differentiation and coincided with DDR phosphorylation. These results reveal opposing roles of collagen-binding integrins and DDRs in regulating PC12 cell differentiation. Composition-controlled artificial collagen provides a versatile matrix platform for dissecting functional crosstalk among collagen receptors.

bioengineering↗

Molecular basis of collagen triple helix recognition by VWF A-like domain 2 of collagen VII: Implications for interlaced anchoring fibril formation

Anchoring fibrils formed by collagen VII play a critical role in stabilizing the dermal-epidermal junction. The N-terminal non-collagenous (NC1) domain of collagen VII binds firmly to basement membrane components including collagen IV and has also been reported to interact with mesenchymal fibrillar collagens via its von Willebrand factor A-like domain 2 (A2 domain). To elucidate how collagen VII recognizes fibrillar collagen, we performed yeast two-hybrid screening using a triple-helical random peptide library, which resulted in the identification of a Met-Gly-{Phi} ({Phi}; aromatic amino acid residue) motif. Biochemical analysis with synthetic triple-helical peptides revealed a binding preference of Trp > Phe as the {Phi} residue by the A2 domain despite Trp being absent in native collagens. The crystal structure of the A2 domain in complex with the Nle (Met surrogate)-Gly-Trp-containing peptide revealed a unique mechanism by which two distinct hydrophobic pockets of the A2 domain accommodate the Nle and Trp residues corresponding to the Met-Gly-{Phi} motif, engaging all three chains of the triple helix. Subsequent molecular dynamics simulations demonstrated that the A2 domain recognizes the corresponding native Met-Gly-Phe motif in a similar manner, but with lower affinity, implying a transient interaction with mesenchymal collagens. The findings obtained in this work suggest models in which transient A2-triple helix interaction promotes the recruitment of collagen I and III fibrils into the arc-shaped structure of anchoring fibrils. This also provides a foundation for linking structural understanding to skin fragility diseases caused by collagen VII dysfunction.

biochemistry↗

Triple-helical ligands selectively targeting the closed αI domain of integrin α2β1

Integrins 1{beta}1, 2{beta}1, 10{beta}1, and 11{beta}1 are known to recognize the GxxGEx motif of the collagen triple helix through their I domains, with the Glu residue engaging the domain via a divalent metal cation. The binding amino acid sequences containing these motifs, identified from native collagen, exhibit low subtype selectivity. Here we identify novel triple-helical peptides that selectively bind the 2I domain independently of Glu and metal ions. Yeast two-hybrid screening of randomized triple-helical peptide libraries yielded non-natural sequences in which the canonical Glu was replaced by aliphatic residues such as Met. X-ray crystal structural analysis of the representative variant GFOGMR in complex with the 2I domain revealed a new binding mode. In this mode, peptides are recognized by the closed, inactive conformation of the 2I domain without metal coordination. This cryptic interaction, likely unused by native ligands, provides a new basis for the design of subtype-specific ligands targeting collagen-binding integrins.

biochemistry↗

A facile method for fluorescent visualization of newly synthesized fibrous collagen by capturing the allysine aldehyde groups serving as cross-link precursors

The fibrous structures of collagen provide physical strength and stability to tissues and organs. Abnormalities in their orientation, growth, and remodeling cause morphogenetic defects and diseases including fibrosis, highlighting the importance of understanding how collagen fibers are organized within tissues. However, this process remains difficult to study, as methods for fluorescently labeling collagen fibers with simple protocols and visualizing their three-dimensional structure are still limited. Here we describe a convenient method for fluorescent labeling of collagen fibers in vertebrate tissues. Using DAF-FM, a probe originally developed for nitric oxide detection, premature collagen fibers can be visualized through covalent binding to allysine residues, which serve as precursors of collagen cross-linking. We further show that combining two probes with different emission spectra, DAF-FM and DAR-4M, enables pulse-chase labeling of newly synthesized collagen fibers. This approach provides a practical tool for investigating collagen dynamics during tissue development and remodeling.

developmental biology↗