Structure-Activity Relationship Investigations of Novel Constrained Chimeric Peptidomimetics of SOCS3 Protein Targeting JAK2.
Sara La MannaMarilisa LeoneFlavia Anna MercurioDaniele FlorioDaniela MarascoPublished in: Pharmaceuticals (Basel, Switzerland) (2022)
SOCS3 (suppressor of cytokine signaling 3) protein suppresses cytokine-induced inflammation and its deletion in neurons or immune cells increases the pathological growth of blood vessels. Recently, we designed several SOCS3 peptidomimetics by assuming as template structures the interfacing regions of the ternary complex constituted by SOCS3, JAK2 (Janus Kinase 2) and gp130 (glycoprotein 130) proteins. A chimeric peptide named KIRCONG chim, including non-contiguous regions demonstrated able to bind to JAK2 and anti-inflammatory and antioxidant properties in VSMCs (vascular smooth muscle cells). With the aim to improve drug-like features of KIRCONG, herein we reported novel cyclic analogues bearing different linkages. In detail, in two of them hydrocarbon cycles of different lengths were inserted at positions i/i+5 and i/i+7 to improve helical conformations of mimetics. Structural features of cyclic compounds were investigated by CD (Circular Dichroism) and NMR (Nuclear Magnetic Resonance) spectroscopies while their ability to bind to catalytic domain of JAK2 was assessed through MST (MicroScale Thermophoresis) assay as well as their stability in biological serum. Overall data indicate a crucial role exerted by the length and the position of the cycle within the chimeric structure and could pave the way to the miniaturization of SOCS3 protein for therapeutic aims.
Keyphrases
- vascular smooth muscle cells
- magnetic resonance
- cell therapy
- anti inflammatory
- structure activity relationship
- oxidative stress
- protein protein
- angiotensin ii
- high resolution
- amino acid
- binding protein
- emergency department
- stem cells
- diabetic rats
- spinal cord
- drug induced
- signaling pathway
- small molecule
- electronic health record
- drug delivery
- gold nanoparticles
- deep learning
- bone marrow
- single molecule
- nk cells