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Shao, X.-X.

Publications and source records attributed to Shao, X.-X..

4 recordsLinked to original sources

FAM237A, rather than peptide PEN and proCCK56-63, is a ligand of the orphan receptor GPR83

G protein-coupled receptor 83 (GPR83) is primarily expressed in the brain and is implicated in the regulation of energy metabolism and some behaviors. Recently, the PCSK1N/proSAAS-derived peptide PEN, the procholecystokinin-derived peptide proCCK56-63, and family with sequence similarity 237 member A (FAM237A) were all reported as agonists of GPR83. However, these results have not yet been reproduced by other laboratories and thus GPR83 is still officially an orphan receptor. The PEN and proCCK56-63 share sequence similarity; however, they are completely different from FAM237A, raising doubts that all of them are ligands of GPR83. To identify its actual ligand(s), in the present study we developed a NanoLuc Binary Technology (NanoBiT)-based ligand-binding assay, fluorescent ligand-based visualization, and a NanoBiT-based {beta}-arrestin recruitment assay for human GPR83. Using these assays, we demonstrated that mature human FAM237A could bind to GPR83 with nanomolar range affinity, which activated this receptor and induced its internalization in transfected human embryonic kidney 293T cells. However, we did not detect any interaction of PEN and proCCK56-63 with GPR83 using these assays. Thus, the results confirmed that FAM237A is an agonist of GPR83, but did not support PEN and proCCK56-63 as ligands of this receptor. Clarification of its actual endogenous agonist will pave the way for further functional studies of this brain-specific receptor. The present study also provided an efficient approach for the preparation of mature FAM237A, which would facilitate further functional studies of this difficult-to-make peptide in the future.

biochemistry↗

LEAP2 is a more conserved ligand than ghrelin for fish GHSRs

Recently, liver-expressed antimicrobial peptide 2 (LEAP2) was identified as an endogenous competitive antagonist and an inverse agonist of the ghrelin receptor GHSR. However, its functions in lower vertebrates are not well understood. Our recent study demonstrated that both LEAP2 and ghrelin are functional towards a fish GHSR from Latimeria chalumnae, an extant coelacanth believed to be one of the closest ancestors of tetrapods. However, amino acid sequence alignment identified that the 6.58 position (Ballesteros-Weinstein numbering system) of most fish GHSRs are not occupied by an aromatic Phe residue, which is absolutely conserved in all known GHSRs from amphibians to mammals, and is responsible for human GHSR binding to its agonist, ghrelin. To test whether these unusual fish receptors are functional, we studied the ligand binding properties of three representative fish GHSRs, two from Danio rerio (zebrafish) and one from Larimichthys crocea (large yellow croaker). After overexpression in human embryonic kidney 293T cells, the three fish GHSRs retained normal binding to all tested LEAP2s, except for a second LEAP2 from L. crocea. However, they displayed almost no binding to all chemically synthesized n-octanoylated ghrelins, despite these ghrelins all retaining normal function towards human and coelacanth GHSRs. Thus, it seems that LEAP2 is a more conserved ligand than ghrelin towards fish GHSRs. Our results not only provided new insights into the interaction mechanism of GHSRs with LEAP2s and ghrelins, but also shed new light on the functions of LEAP2 and ghrelin in different fish species.

biochemistry↗

Development of esterase-resistant and highly active ghrelin analogs via thiol-ene click chemistry

The orexigenic peptide ghrelin exerts important functions in energy metabolism and cellular homeostasis by activating the growth hormone secretagogue receptor type 1a (GHSR1a), and thus has therapeutic potential to treat certain diseases. Native ghrelin carries an essential O-fatty acyl moiety at the side-chain of its third Ser residue; however, this posttranslational modification is susceptible to hydrolysis by certain esterases in circulation, representing a major route of in vivo inactivation of ghrelin. In the present study, we developed a novel approach to prepare various esterase-resistant ghrelin analogs via photo-induced thiol-ene click chemistry. A recombinant unacylated human ghrelin mutant carrying a unique Cys residue at the third position was reacted with commercially available end alkenes, thus various alkyl moieties were introduced to the side-chain of its unique Cys residue via a thioether bond. Among eleven S-alkylated ghrelin analogs, analog 11, generated by reacting with 2-methyl-1-octene, not only acquired much higher stability in human serum and fetal bovine serum, but also acquired moderately higher activity compared with native human ghrelin. Thus, the present study not only provided an efficient approach to prepare various esterase-resistant ghrelin analogs, but also produced a novel highly stable and highly active ghrelin analog with therapeutic potential.

biochemistry↗

Development of a novel bioluminescent activity assay for peptide ligases

In recent years, some peptide ligases have been identified, such as bacterial sortases and certain plant asparaginyl or prolyl endopeptidases. Peptide ligases have wide applications in protein labeling and cyclic peptide synthesis. To characterize known peptide ligases or identify new ones, we propose a novel bioluminescent activity assay via the genetic fusion of a recognition motif of a peptide ligase to the C-terminus of an inactive large NanoLuc fragment (LgBiT) and the chemical introduction of a nucleophilic motif preferred by the peptide ligase to the N-terminus of the low-affinity SmBiT complementation tag. When the inactive ligation version LgBiT protein was ligated with the low-affinity ligation version SmBiT tag by the expected peptide ligase, its luciferase activity would be restored and could be quantified sensitively according to the measured bioluminescence. In the present study, we first validated the novel bioluminescent activity assay using bacterial sortase A and plant butelase-1. Subsequently, we screened novel peptide ligases from crude extracts of selected plants using two LgBiT-SmBiT ligation pairs. Among 80 common higher plants, we identified that five of them likely express asparaginyl endopeptidase-type peptide ligase and four of them likely express prolyl endopeptidase-type peptide ligase, suggesting that peptide ligases are not so rare in higher plants and more of them await discovery. The novel bioluminescent activity assay is ultrasensitive, convenient for use, and resistant to protease interference, and thus would have wide applications for characterizing known peptide ligases or screening new ones from various sources in future studies.

biochemistry↗