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<div style="top:+0.2em; font-size:1.2em; padding:5px 5px 5px 10px; float:right;">'''''ISSN 2310-6301'''''</div>
<div id="issn">'''''ISSN 2310-6301'''''</div>
 
<div id="headerOne">As <b>life is more than 2D</b>, Proteopedia helps to bridge the gap between 3D structure and function of biomacromolecules.</div>
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<div id="headerTwo"><b>Proteopedia</b> presents this information in a user-friendly way as a '''collaborative & free 3D-encyclopedia of proteins & other biomolecules.'''
<b>As life is more than 2D</b>, Proteopedia helps to bridge the gap between 3D structure & function of biomacromolecules
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Often it is difficult to utilize the wealth of information found in 3D biomacromolecular structures. Proteopedia's goal is to present structure/function information on these molecules in a user-friendly manner to a broad scientific audience.
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<th style="padding: 10px;background-color: #33ff7b">Selected Pages</th>
<th style="padding: 10px;background-color: #dae4d9">Art on Science</th>
<th style="padding: 10px;background-color: #f1b840">Journals</th>
<th style="padding: 10px;background-color: #79baff">Education</th>
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<tr id="mainPageSections"><th class="mainPageSectionA">Selected Research Pages</th>
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<th class="mainPageSectionB">In Journals</th>
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<p>[[Help:Contents#For_authors:_contributing_content|How to add content to Proteopedia]]</p>
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<p>[[Proteopedia:Video_Guide|Video Guides]]</p>
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<p>[[Who knows]] ...</p>
[[Help:Contents#For_authors:_contributing_content|How to add content to Proteopedia]] <br>
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[[Proteopedia:Video_Guide|Video Guides]] <br>
 
[[Who knows]] ...
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<p>[[:Category:PDB Art|List of Art on Science pages]]</p>
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<p>[[I3DC|About Interactive 3D Complements - '''I3DCs''']]</p>
[[I3DC|About Interactive 3D Complements - '''I3DCs''']] <br>
<p>[[Proteopedia:I3DC|List of I3DCs]]</p>
[[Proteopedia:I3DC|List of I3DCs]] <br>
<p>[[How to get an I3DC for your paper]]</p>
[[How to get an I3DC for your paper]]
 
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<p>[[Teaching strategies using Proteopedia]]</p>
[[Teaching strategies using Proteopedia]] <br>
<p>[[Teaching_Scenes%2C_Tutorials%2C_and_Educators%27_Pages|Examples of pages for teaching]]</p>
[[Teaching_Scenes%2C_Tutorials%2C_and_Educators%27_Pages|Examples of pages for teaching]] <br>
<p>[[Help:Contents#For_authors:_contributing_content|How to add content to Proteopedia]]</p>
[[Help:Contents#For_authors:_contributing_content|How to add content to Proteopedia]]
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<td>[[Proteopedia:About|About]]</td>
<td>[[Proteopedia:About|About]]</td>
<td>[[Special:Contact|Contact]]</td>
<td>[[Special:Contact|Contact]]</td>
<td>[[Template:MainPageNews|Hot News]]</td>
<td>[[Proteopedia:Table of Contents|Table of Contents]]</td>
<td>[[Proteopedia:Table of Contents|Table of Contents]]</td>
<td>[[Proteopedia:Structure Index|Structure Index]]</td>
<td>[[Proteopedia:Structure Index|Structure Index]]</td>
<td>[[Help:Contents|Help]]</td>
<td>[[Help:Contents|Help]]</td>
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Latest revision as of 15:44, 16 February 2026

ISSN 2310-6301
As life is more than 2D, Proteopedia helps to bridge the gap between 3D structure and function of biomacromolecules.
Proteopedia presents this information in a user-friendly way as a collaborative & free 3D-encyclopedia of proteins & other biomolecules.
Selected Research Pages In Journals Education
Green Fluorescent Protein

by Eran Hodis
Green fluorescent protein (GFP) is a bioluminescent polypeptide isolated from the jellyfish Aequorea victoria. GFP converts the blue chemiluminescence of aequorin into green fluorescent light. In the laboratory, GFP can be incorporated into a variety of biological systems in order to function as a marker protein. Since its discovery in 1962, GFP has become a significant contributor to the research of monitoring gene expression, localization, mobility, traffic, or interactions between various membrane and cytoplasmic proteins.

>>> Visit this page >>>

Geobacter pili: surprising function.

Y Gu, V Srikanth, AI Salazar-Morales, R Jain, JP O'Brien, SM Yi, RK Soni, FA Samatey, SE Yalcin, NS Malvankar. Nature 2021 doi: 10.1038/s41586-021-03857-w
Geobacter pili were long thought to be electrically conductive protein nanowires composed of PilA-N. Nanowires are crucial to the energy metabolism of bacteria flourishing in oxygen-deprived environments. To everyone's surprise, in 2019, the long-studied nanowires were found to be linear polymers of multi-heme cytochromes, not pili. The first cryo-EM structure of pili (2021) reveals a filament made of dimers of PilA-N and PilA-C, shown. Electrical conductivity of pili is much lower than that of cytochrome nanowires. Evidence suggests that PilA-NC filaments are periplasmic pseudopili crucial for exporting cytochrome nanowires onto the cell surface, rather than the pili serving as nanowires themselves.

>>> Visit I3DC Interactive Visualizations >>>

Tutorial: The Ramachandran principle, phi (φ) and psi (ψ) angles in proteins

by Eric Martz
The Ramachandran Principle says that alpha helices, beta strands, and turns are the most likely conformations for a polypeptide chain to adopt, because most other conformations are impossible due to steric collisions between atoms. Check Show Clashes to see where non-bonded atoms are overlapping, and thus in physically impossible positions.

>>> Visit this tutorial >>>

     

How to add content to Proteopedia
Video Guides
Who knows ...

About Interactive 3D Complements - I3DCs
List of I3DCs
How to get an I3DC for your paper

Teaching strategies using Proteopedia
Examples of pages for teaching
How to add content to Proteopedia

Proteopedia Page Contributors and Editors (what is this?)

Jaime Prilusky, Joel L. Sussman, Angel Herraez