API5-FGF2 complex

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==Crystal Structure of API5-FGF2 Complex==
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<scene name='10/1096856/Fgf2_binding_residues/2'>Text To Be Displayed</scene>==Crystal Structure of API5-FGF2 Complex==
<StructureSection load='6L4O ' size='340' side='right' caption='Crystal structure of API5-FGF2 complex' scene=''>
<StructureSection load='6L4O ' size='340' side='right' caption='Crystal structure of API5-FGF2 complex' scene=''>
BI3323-Aug2025
BI3323-Aug2025
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== Functions of API5 and FGF2 ==
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== Functions of API5 and FGF2 ==<scene name='10/1096856/Fgf2_binding_residues/2'>Text To Be Displayed</scene>
<font color='maroon'>Apoptosis</font>, a highly regulated programmed cell death process, is important in maintaining tissue homeostasis and eliminating damaged or potentially abnormal cells. Various pro- and anti-apoptotic proteins regulate apoptosis. Api5, [[3v6a]],<font color='pink'>(Apoptosis Inhibitor 5)</font> is an anti-apoptotic protein which is known to inhibit cell death by various methods, which includes Api5-FGF2 mediated [[Bim]] (pro-apoptotic protein) degradation <ref>DOI 10.3390/biom14010136</ref>.
<font color='maroon'>Apoptosis</font>, a highly regulated programmed cell death process, is important in maintaining tissue homeostasis and eliminating damaged or potentially abnormal cells. Various pro- and anti-apoptotic proteins regulate apoptosis. Api5, [[3v6a]],<font color='pink'>(Apoptosis Inhibitor 5)</font> is an anti-apoptotic protein which is known to inhibit cell death by various methods, which includes Api5-FGF2 mediated [[Bim]] (pro-apoptotic protein) degradation <ref>DOI 10.3390/biom14010136</ref>.
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The API5–FGF2 interface is dominated by <font color='purple'>electrostatic interactions</font>, as supported by the surface charge patterns and the salt-sensitive reduction of binding. A total of twenty API5 residues and fourteen FGF2 residues make direct contact. Among them, <scene name='10/1096856/Api5_binding_residues/1'>seven</scene> highly conserved, mainly <font color='blue'>negatively charged</font> API5 residues: Asp145, Glu184, Asp185, Glu190, Glu219, Asp222, and Arg237, form <font color='orange'>hydrogen bonds</font> or <font color='orange'>salt bridges</font> with FGF2. These residues lie on the “convex” central region of API5 that links its HEAT (α1–α11) and ARM-like (α12–α19) helical repeats.
The API5–FGF2 interface is dominated by <font color='purple'>electrostatic interactions</font>, as supported by the surface charge patterns and the salt-sensitive reduction of binding. A total of twenty API5 residues and fourteen FGF2 residues make direct contact. Among them, <scene name='10/1096856/Api5_binding_residues/1'>seven</scene> highly conserved, mainly <font color='blue'>negatively charged</font> API5 residues: Asp145, Glu184, Asp185, Glu190, Glu219, Asp222, and Arg237, form <font color='orange'>hydrogen bonds</font> or <font color='orange'>salt bridges</font> with FGF2. These residues lie on the “convex” central region of API5 that links its HEAT (α1–α11) and ARM-like (α12–α19) helical repeats.
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<scene name='10/1096856/Fgf2_binding_residues/1'>Seven</scene> <font color='red'>positively charged</font> surface residues of FGF2: Asn169 in the β1–β2 loop, Arg223 in β7, Arg262 and Thr263 in the β10–β11 loop, Lys267 in β11, and Lys271 and Lys277 in the β11–β12 loop, form <font color='orange'>hydrogen bonds</font> or <font color='orange'>salt bridges</font> with Api5.
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<scene name='10/1096856/Fgf2_binding_residues/2'>Seven</scene><font color='red'>positively charged</font> surface residues of FGF2: Asn169 in the β1–β2 loop, Arg223 in β7, Arg262 and Thr263 in the β10–β11 loop, Lys267 in β11, and Lys271 and Lys277 in the β11–β12 loop, form <font color='orange'>hydrogen bonds</font> or <font color='orange'>salt bridges</font> with Api5.
Seven additional <scene name='10/1096856/Fgf2_bindingresidue_additional/1'>FGF2 residues</scene> (Gly170, Arg181, Lys261, Gln265, Tyr266, Leu268, and Ala278) together with thirteen <scene name='10/1096856/Api5_bindingresidue_additional/1'>Api5 residues</scene> (Gly143, Glu144, Arg148, Leu183, Val186, Thr187, Gly188, Gln220, Glu224, Gln225, Asn228, Ser230, and Asp231) create a secondary contact surface that further stabilizes the API5–FGF2 interaction. API5−FGF2 interaction is also necessary for the nuclear localization of LMW FGF2.
Seven additional <scene name='10/1096856/Fgf2_bindingresidue_additional/1'>FGF2 residues</scene> (Gly170, Arg181, Lys261, Gln265, Tyr266, Leu268, and Ala278) together with thirteen <scene name='10/1096856/Api5_bindingresidue_additional/1'>Api5 residues</scene> (Gly143, Glu144, Arg148, Leu183, Val186, Thr187, Gly188, Gln220, Glu224, Gln225, Asn228, Ser230, and Asp231) create a secondary contact surface that further stabilizes the API5–FGF2 interaction. API5−FGF2 interaction is also necessary for the nuclear localization of LMW FGF2.

Revision as of 10:48, 1 December 2025

==Crystal Structure of API5-FGF2 Complex==

Crystal structure of API5-FGF2 complex

Drag the structure with the mouse to rotate

References

  1. doi: https://dx.doi.org/10.3390/biom14010136
  2. https://doi.org/10.1210/edrv.18.1.0292
  3. Bong SM, Bae SH, Song B, Gwak H, Yang SW, Kim S, Nam S, Rajalingam K, Oh SJ, Kim TW, Park S, Jang H, Lee BI. Regulation of mRNA export through API5 and nuclear FGF2 interaction. Nucleic Acids Res. 2020 Jun 19;48(11):6340-6352. doi: 10.1093/nar/gkaa335. PMID:32383752 doi:http://dx.doi.org/10.1093/nar/gkaa335
  4. Bong SM, Bae SH, Song B, Gwak H, Yang SW, Kim S, Nam S, Rajalingam K, Oh SJ, Kim TW, Park S, Jang H, Lee BI. Regulation of mRNA export through API5 and nuclear FGF2 interaction. Nucleic Acids Res. 2020 Jun 19;48(11):6340-6352. doi: 10.1093/nar/gkaa335. PMID:32383752 doi:http://dx.doi.org/10.1093/nar/gkaa335
  5. doi: https://dx.doi.org/10.1186/s12885-023-10866-7
  6. Bong SM, Bae SH, Song B, Gwak H, Yang SW, Kim S, Nam S, Rajalingam K, Oh SJ, Kim TW, Park S, Jang H, Lee BI. Regulation of mRNA export through API5 and nuclear FGF2 interaction. Nucleic Acids Res. 2020 Jun 19;48(11):6340-6352. doi: 10.1093/nar/gkaa335. PMID:32383752 doi:http://dx.doi.org/10.1093/nar/gkaa335

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