Journal:JBSD:1
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<StructureSection load='Figure_2.pdb' size='450' side='right' scene='Journal:JBSD:1/Cv/1' caption=''> | <StructureSection load='Figure_2.pdb' size='450' side='right' scene='Journal:JBSD:1/Cv/1' caption=''> | ||
=== An Insight to the Dynamics of Conserved Water Mediated Salt Bridge Interaction and Inter-Domain Recognition in hIMPDH Isoforms === | === An Insight to the Dynamics of Conserved Water Mediated Salt Bridge Interaction and Inter-Domain Recognition in hIMPDH Isoforms === | ||
- | <big>Hridoy R Bairagya and Bishnu P Mukhopadhyay</big><ref> | + | <big>Hridoy R Bairagya and Bishnu P Mukhopadhyay</big><ref>DOI 10.1080/07391102.2012.712458</ref> |
<hr/> | <hr/> | ||
<b>Molecular Tour</b><br> | <b>Molecular Tour</b><br> | ||
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<scene name='Journal:JBSD:1/Cv/2'>Domains of IMPDH structure</scene> | <scene name='Journal:JBSD:1/Cv/2'>Domains of IMPDH structure</scene> | ||
- | The structures of hIMPDH contain catalytic (394 residues) and a pair (60 residues length) of cystathionine-beta-synthase domains: <span style="color:lime;background-color:black;font-weight:bold;">CBS-1 (residues 112-171; colored in lime)</span> and <span style="color:green;background-color:black;font-weight:bold;">CBS-2 (residues 172-232; colored in green)</span>) which are observed at periphery of protein or outside the catalytic barrel. But the sequence of CBS domains have subdivided the sequences of catalytic domains into IN and IC sub-domains ( | + | The structures of hIMPDH contain catalytic (394 residues) and a pair (60 residues length) of cystathionine-beta-synthase domains: <span style="color:lime;background-color:black;font-weight:bold;">CBS-1 (residues 112-171; colored in lime)</span> and <span style="color:green;background-color:black;font-weight:bold;">CBS-2 (residues 172-232; colored in green)</span>) which are observed at periphery of protein or outside the catalytic barrel. But the sequence of CBS domains have subdivided the sequences of catalytic domains into <span style="color:yellow;background-color:black;font-weight:bold;">IN (residues 28-111; colored in yellow)</span> and <font color='darkmagenta'><b>IC (residues 233-504; colored in darkmagenta)</b></font> sub-domains (see also image below). Structural segments of <font color='magenta'><b>flap region (residues 400-450; colored in magenta)</b></font> and CBS domains are almost inaccessible in X-ray structures of hIMPDH and nhIMPDH-II enzyme. |
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+ | [[Image:Figu1.png|left|350px|thumb|The schematic presentation of domain architecture in IMPDH–II enzyme.]] | ||
+ | {{Clear}} | ||
- | Dynamics of conserved water mediated salt bridge in hIMPDH simulated structures | + | '''Dynamics of conserved water mediated salt bridge in hIMPDH simulated structures''' |
- | The six conserved hydrophilic sites which are stabilized the salt bridges (evolved during molecular simulation) in IMPDH seem very interesting | + | The six conserved hydrophilic sites which are stabilized the salt bridges (evolved during molecular simulation) in IMPDH seem very interesting and it shade some new light for the development of forthcoming science on IMPDH enzyme. The hydrophilic centers WII2, WII3 and WII4 of hIMPDH-II, WI2 and WI3 of hIMPDH-I, and WNH2, WNH3 of nhIMPDH-II structure are responsible for intra domain (IN --- IC) association, domain recognition through water mediated salt bridge. During dynamics, WII5, WI4 and WNH4 of <scene name='Journal:JBSD:1/Cv/14'>1B3O</scene>, <scene name='Journal:JBSD:1/Cv/6'>1JCN</scene> and <scene name='Journal:JBSD:1/Cv/10'>1JR1</scene> (<font color='red'><b>the water molecules are represented as red spheres)</b></font> are solely involved in (C1 -- C2) intra domain recognition and gear the conformational orientation of flanking CBS domains. Another important structural role of WII1 and WNH1 are to stabilize the isoform-specific inter-domain (IN --- C2) in type –II IMPDH (<scene name='Journal:JBSD:1/Cv/14'>1B3O</scene> and <scene name='Journal:JBSD:1/Cv/10'>1JR1</scene>) structures or to connect the two terminal domains via water mediated salt bridge. Possibly the sequence dissimilarity (~ 15 % between type 1 and II) and structural topology of enzyme may control the dynamic behavior of water molecules in inter-domain clefts. Moreover, this inherent flexibility of water molecules in the hIMPDH-II simulated structure may influence the biochemical activities in CML cancer cells. The work put forward some light on the binding propensity of CBS domain with catalytic domains (IN and IC) via interaction of conserved water mediated salt bridges (WII1 and WII6 in <scene name='Journal:JBSD:1/Cv/14'>1B3O</scene>, WI1, WI5 and WI6 in <scene name='Journal:JBSD:1/Cv/6'>1JCN</scene>, WNH1, WNH2, WNH3, WNH5 and WNH6 in <scene name='Journal:JBSD:1/Cv/10'>1JR1</scene>) and their exclusive participation in recognition process. |
During dynamics charges over the oxygen atom of water molecules are varied in the Lys --- Asp / Lys --- Glu salt bridges. Some charges on Lys (-Nz) are transferred to acidic oxygen of Asp / Glu residues and vise versa. However, in water mediated Arg --- Asp interaction, some charges are observed to flow from the basic nitrogen center to acidic oxygen atoms and the charges over water oxygen is also varied. During dynamics, the flow of charges through water molecules in Lys to Asp /Glu residues are observed to be bidirectional, whereas in case of Arg to Asp, it is unidirectional. | During dynamics charges over the oxygen atom of water molecules are varied in the Lys --- Asp / Lys --- Glu salt bridges. Some charges on Lys (-Nz) are transferred to acidic oxygen of Asp / Glu residues and vise versa. However, in water mediated Arg --- Asp interaction, some charges are observed to flow from the basic nitrogen center to acidic oxygen atoms and the charges over water oxygen is also varied. During dynamics, the flow of charges through water molecules in Lys to Asp /Glu residues are observed to be bidirectional, whereas in case of Arg to Asp, it is unidirectional. | ||
- | Topology of inhibitor for hIMPDH-II isoforms: Attempt to design of CML cancer drug | + | '''Topology of inhibitor for hIMPDH-II isoforms: Attempt to design of CML cancer drug''' |
- | Stereospecific interaction or recognition of IN to C2 domain through conserved water mediated salt bridge (K109 (NZ) --- D215 / D216 and K109 (NZ) --- WII1 --- D215 / D216) are observed to be unique in | + | Stereospecific interaction or recognition of IN to C2 domain through <scene name='Journal:JBSD:1/Cv/12'>conserved water mediated salt bridge (K109 (NZ) --- D215 / D216 and K109 (NZ) --- WII1 --- D215 / D216)</scene> are observed to be unique in hIMPDH–II, which is not observed in type I isoform (1JCN). The geometrical and electronic consequences of <scene name='Journal:JBSD:1/Cv/14'>conserved water molecular interaction as shown in Figure 5 (K109 to acidic D215 / D216 and E217)</scene> and their stereo chemical features (specially in CBS --- IN inter-domain recognition site) may be used to design the actual topology of inhibitor for hIMPDH-II isoform using water mimic inhibitor design protocol. Possibly, heterocyclic ligand with flexible structure containing two or three basic and hydrophilic groups with suitable spacer length may be implemented to design the isoform selective inhibitor for CML cancer. |
Current revision
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- ↑ Bairagya HR, Mukhopadhyay BP. An insight to the dynamics of conserved water-mediated salt bridge interaction and interdomain recognition in hIMPDH isoforms. J Biomol Struct Dyn. 2012 Aug 28. PMID:22928911 doi:10.1080/07391102.2012.712458
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