<?xml version="1.0" encoding="UTF-8"?><rss xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:content="http://purl.org/rss/1.0/modules/content/" xmlns:atom="http://www.w3.org/2005/Atom" version="2.0"><channel><title><![CDATA[RFdiffusion验证记录]]></title><description><![CDATA[<p dir="auto">RFdiffusion<br />
<a href="https://www.nature.com/articles/s41586-023-06415-8" rel="nofollow ugc">https://www.nature.com/articles/s41586-023-06415-8</a></p>
<p dir="auto"><a href="https://en.wikipedia.org/wiki/Molecular_binding" rel="nofollow ugc">https://en.wikipedia.org/wiki/Molecular_binding</a><br />
Molecular binding is an attractive interaction between two molecules that results in a stable association in which the molecules are in close proximity to each other. It is formed when atoms or molecules bind together by sharing of electrons. It often, but not always, involves some chemical bonding.</p>
]]></description><link>http://an.forum.genostack.com/topic/1036/rfdiffusion验证记录</link><generator>RSS for Node</generator><lastBuildDate>Sat, 13 Jun 2026 09:38:28 GMT</lastBuildDate><atom:link href="http://an.forum.genostack.com/topic/1036.rss" rel="self" type="application/rss+xml"/><pubDate>Fri, 26 Jan 2024 10:08:00 GMT</pubDate><ttl>60</ttl><item><title><![CDATA[Reply to RFdiffusion验证记录 on Fri, 02 Feb 2024 09:52:12 GMT]]></title><description><![CDATA[<p dir="auto"><a href="https://2023.igem.wiki/uoregon/software" rel="nofollow ugc">https://2023.igem.wiki/uoregon/software</a><br />
EZBinder - A one-click solution to De Novo protein binder design that anyone can use.<br />
EZBinder is a python script that automates every step of a common binder design pipeline. It is able to fully automate a workflow that runs binder designs through the pipeline of: rfDiffusion → ProteinMPNN → ESMFold</p>
]]></description><link>http://an.forum.genostack.com/post/2473</link><guid isPermaLink="true">http://an.forum.genostack.com/post/2473</guid><dc:creator><![CDATA[anneng]]></dc:creator><pubDate>Fri, 02 Feb 2024 09:52:12 GMT</pubDate></item><item><title><![CDATA[Reply to RFdiffusion验证记录 on Sat, 27 Jan 2024 05:44:09 GMT]]></title><description><![CDATA[<p dir="auto">Metal-binding proteins are proteins or protein domains that chelate a metal ion.<br />
绑定金属离子的蛋白</p>
]]></description><link>http://an.forum.genostack.com/post/2456</link><guid isPermaLink="true">http://an.forum.genostack.com/post/2456</guid><dc:creator><![CDATA[anneng]]></dc:creator><pubDate>Sat, 27 Jan 2024 05:44:09 GMT</pubDate></item><item><title><![CDATA[Reply to RFdiffusion验证记录 on Sat, 27 Jan 2024 05:41:38 GMT]]></title><description><![CDATA[<p dir="auto"><strong>protein monomer design</strong><br />
<a href="https://rwu.pressbooks.pub/bio103/chapter/amino-acids-and-proteins/#:~:text=Amino%20acids%20are%20the%20monomers,the%20same%2020%20amino%20acids" rel="nofollow ugc">https://rwu.pressbooks.pub/bio103/chapter/amino-acids-and-proteins/#:~:text=Amino acids are the monomers,the same 20 amino acids</a>.<br />
<a href="/assets/uploads/files/1706324804264-introduction-to-molecular-and-cell-biology-1688044607._print.pdf">Introduction-to-Molecular-and-Cell-Biology-1688044607._print.pdf</a><br />
<img src="/assets/uploads/files/1706334011899-b2223f6e-c6f9-41b9-ab01-1f49ead22b8f-image.png" alt="b2223f6e-c6f9-41b9-ab01-1f49ead22b8f-image.png" class=" img-responsive img-markdown" /></p>
<p dir="auto"><a href="https://bio.libretexts.org/Bookshelves/Introductory_and_General_Biology/Book%3A_General_Biology_(Boundless)/03%3A_Biological_Macromolecules/3.08%3A_Proteins_-_Amino_Acids" rel="nofollow ugc">https://bio.libretexts.org/Bookshelves/Introductory_and_General_Biology/Book%3A_General_Biology_(Boundless)/03%3A_Biological_Macromolecules/3.08%3A_Proteins_-_Amino_Acids</a></p>
]]></description><link>http://an.forum.genostack.com/post/2455</link><guid isPermaLink="true">http://an.forum.genostack.com/post/2455</guid><dc:creator><![CDATA[anneng]]></dc:creator><pubDate>Sat, 27 Jan 2024 05:41:38 GMT</pubDate></item><item><title><![CDATA[Reply to RFdiffusion验证记录 on Fri, 26 Jan 2024 11:35:38 GMT]]></title><description><![CDATA[<p dir="auto"><a href="https://www.malvernpanalytical.com/en/products/measurement-type/higher-order-structure#:~:text=Secondary%2C%20tertiary%20and%20quaternary%20structure,turn%20can%20affect%20protein%20activity" rel="nofollow ugc">https://www.malvernpanalytical.com/en/products/measurement-type/higher-order-structure#:~:text=Secondary%2C tertiary and quaternary structure,turn can affect protein activity</a>.<br />
Higher Order Structure (HOS)<br />
Protein higher order structure (HOS) include the three-dimensional structures that are necessary for structure and function. Register now to access further resources for your success.</p>
<p dir="auto">Protein structure can be characterized into different levels:</p>
<p dir="auto">Primary Order Structure<br />
The sequence of amino acids in the polypeptide chain. The primary sequence of a protein defines its structure and function.<br />
Secondary Order Structure<br />
This includes the localized structures within the protein backbone. The most common types of secondary structures are the α helix and the β pleated sheet, held in place by hydrogen bonds.<br />
Tertiary Order Structure<br />
The three-dimensional shape of a protein.<br />
Quaternary Order Structure<br />
This is the structure of a multi-protein complex such as a dimer or trimer.<br />
Secondary, tertiary and quaternary structure is often collectively termed as the higher order structure (HOS) of a protein. HOS is responsible for the correct folding and three-dimensional shape of a biologic drug. This can be affected by different formulations, which in turn can affect protein activity. The folding and shape of the protein impacts directly on the functionality of the protein drug.</p>
]]></description><link>http://an.forum.genostack.com/post/2453</link><guid isPermaLink="true">http://an.forum.genostack.com/post/2453</guid><dc:creator><![CDATA[anneng]]></dc:creator><pubDate>Fri, 26 Jan 2024 11:35:38 GMT</pubDate></item></channel></rss>