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	<id>https://proteopedia.org/index.php?action=history&amp;feed=atom&amp;title=Maximum_Occurrence</id>
	<title>Maximum Occurrence - Revision history</title>
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	<updated>2026-10-01T00:54:28Z</updated>
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	<entry>
		<id>https://proteopedia.org/index.php?title=Maximum_Occurrence&amp;diff=1136273&amp;oldid=prev</id>
		<title>Enrico Ravera at 09:38, 26 October 2010</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Maximum_Occurrence&amp;diff=1136273&amp;oldid=prev"/>
		<updated>2010-10-26T09:38:20Z</updated>

		<summary type="html">&lt;p&gt;&lt;/p&gt;
&lt;table style=&quot;background-color: #fff; color: #202122;&quot; data-mw=&quot;interface&quot;&gt;
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				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;← Older revision&lt;/td&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 09:38, 26 October 2010&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l1&quot;&gt;Line 1:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 1:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Maximum Occurrence (MO)&amp;lt;ref&amp;gt;doi:10.1021/ja1063923&amp;lt;/ref&amp;gt; refers to a method for making rigorous numerical assessments about the maximum percent of time that a conformer of a flexible macromolecule can exist and still be compatible with the experimental data. Maximum Occurrence of a conformer is defined as the maximum weight that it can have in one ensemble that matches the average experimental data.&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Maximum Occurrence (MO)&amp;lt;ref &lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;name=&#039;jacs_rav&#039;&lt;/ins&gt;&amp;gt;doi:10.1021/ja1063923&amp;lt;/ref&amp;gt; refers to a method for making rigorous numerical assessments about the maximum percent of time that a conformer of a flexible macromolecule can exist and still be compatible with the experimental data. Maximum Occurrence of a conformer is defined as the maximum weight that it can have in one ensemble that matches the average experimental data.&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Background ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Background ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Flexible proteins, even in the simplest case of two rigid domains linked by a flexible region, may sample a wide conformational space. Such variety makes their study by X-ray crystallography difficult, because a single conformation is trapped in the crystal, if crystals are obtained at all. Solution techniques such as Nuclear Magnetic Resonance (NMR) and Small-Angle Scattering of both X-rays and Neutrons (SAXS and SANS), provide experimental observables averaged over many conformation with different weights.&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Flexible proteins, even in the simplest case of two rigid domains linked by a flexible region, may sample a wide conformational space. Such variety makes their study by X-ray crystallography difficult, because a single conformation is trapped in the crystal, if crystals are obtained at all. Solution techniques such as Nuclear Magnetic Resonance (NMR) and Small-Angle Scattering of both X-rays and Neutrons (SAXS and SANS), provide experimental observables averaged over many conformation with different weights.&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l6&quot;&gt;Line 6:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 6:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;The Maximum Occurrence is the maximum percent of time that a conformer of a macromolecule can exist and still be compatible with the experimental data (see Figure 1). In this case, the quantitative assessment is rigorous, since only one conformer of the ensemble is considered while the completing conformers are not artificially endowed of physical relevance that they may not have.&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;The Maximum Occurrence is the maximum percent of time that a conformer of a macromolecule can exist and still be compatible with the experimental data (see Figure 1). In this case, the quantitative assessment is rigorous, since only one conformer of the ensemble is considered while the completing conformers are not artificially endowed of physical relevance that they may not have.&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;[[Image:MO_profiles.png|thumbnail|350px|Figure 1: Maximum Occurrence profiles for some conformers of Calcium-loaded calmodulin. Dashed line indicates the maximum allowed disagreement between experimental and calculated data.]]  &lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;[[Image:MO_profiles.png|thumbnail|350px|Figure 1: Maximum Occurrence profiles for some conformers of Calcium-loaded calmodulin. Dashed line indicates the maximum allowed disagreement between experimental and calculated data.]]  &lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Recently, an implementation of this method based on distributed computing was presented to evaluate the MO profiles for a large number of conformers: this represents an evolution of a previous approach where few conformations with maximum allowed probability (MAP) were looked for&amp;lt;ref&amp;gt;DOI:10.1021/ja0726613&amp;lt;/ref&amp;gt;.  &lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Recently, an implementation of this method based on distributed computing was presented to evaluate the MO profiles for a large number of conformers&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&amp;lt;ref name=&#039;jacs_rav&#039;/&amp;gt;&lt;/ins&gt;: this represents an evolution of a previous approach where few conformations with maximum allowed probability (MAP) were looked for&amp;lt;ref&amp;gt;DOI:10.1021/ja0726613&amp;lt;/ref&amp;gt;.  &lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Methods for determination of Maximum Occurrence==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Methods for determination of Maximum Occurrence==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Enrico Ravera</name></author>
	</entry>
	<entry>
		<id>https://proteopedia.org/index.php?title=Maximum_Occurrence&amp;diff=1136272&amp;oldid=prev</id>
		<title>Enrico Ravera: New page: Maximum Occurrence (MO)&lt;ref&gt;doi:10.1021/ja1063923&lt;/ref&gt; refers to a method for making rigorous numerical assessments about the maximum percent of time that a conformer of a flexible macrom...</title>
		<link rel="alternate" type="text/html" href="https://proteopedia.org/index.php?title=Maximum_Occurrence&amp;diff=1136272&amp;oldid=prev"/>
		<updated>2010-10-26T09:21:41Z</updated>

		<summary type="html">&lt;p&gt;New page: Maximum Occurrence (MO)&amp;lt;ref&amp;gt;doi:10.1021/ja1063923&amp;lt;/ref&amp;gt; refers to a method for making rigorous numerical assessments about the maximum percent of time that a conformer of a flexible macrom...&lt;/p&gt;
&lt;p&gt;&lt;b&gt;New page&lt;/b&gt;&lt;/p&gt;&lt;div&gt;Maximum Occurrence (MO)&amp;lt;ref&amp;gt;doi:10.1021/ja1063923&amp;lt;/ref&amp;gt; refers to a method for making rigorous numerical assessments about the maximum percent of time that a conformer of a flexible macromolecule can exist and still be compatible with the experimental data. Maximum Occurrence of a conformer is defined as the maximum weight that it can have in one ensemble that matches the average experimental data.&lt;br /&gt;
== Background ==&lt;br /&gt;
Flexible proteins, even in the simplest case of two rigid domains linked by a flexible region, may sample a wide conformational space. Such variety makes their study by X-ray crystallography difficult, because a single conformation is trapped in the crystal, if crystals are obtained at all. Solution techniques such as Nuclear Magnetic Resonance (NMR) and Small-Angle Scattering of both X-rays and Neutrons (SAXS and SANS), provide experimental observables averaged over many conformation with different weights.&lt;br /&gt;
The problem of recovering from the data themselves the conformational ensemble that generated the data is an ill-defined inverse problem, that admits an infinite number of solutions.&amp;lt;br /&amp;gt; &lt;br /&gt;
Popular methods for the determination of conformational disorder rely on the construction of ensembles that are solutions to this problem. Anyway, there is no proof that one solution can be better than another, so quantitative assessments are risky with these approaches. &amp;lt;br /&amp;gt;&lt;br /&gt;
The Maximum Occurrence is the maximum percent of time that a conformer of a macromolecule can exist and still be compatible with the experimental data (see Figure 1). In this case, the quantitative assessment is rigorous, since only one conformer of the ensemble is considered while the completing conformers are not artificially endowed of physical relevance that they may not have.&lt;br /&gt;
[[Image:MO_profiles.png|thumbnail|350px|Figure 1: Maximum Occurrence profiles for some conformers of Calcium-loaded calmodulin. Dashed line indicates the maximum allowed disagreement between experimental and calculated data.]] &lt;br /&gt;
Recently, an implementation of this method based on distributed computing was presented to evaluate the MO profiles for a large number of conformers: this represents an evolution of a previous approach where few conformations with maximum allowed probability (MAP) were looked for&amp;lt;ref&amp;gt;DOI:10.1021/ja0726613&amp;lt;/ref&amp;gt;. &lt;br /&gt;
&lt;br /&gt;
== Methods for determination of Maximum Occurrence==&lt;br /&gt;
&lt;br /&gt;
As already mentioned, to evaluate the Maximum Occurrence, an ensemble is sought so that the conformation under investigation is contained up to a certain value. At the Maximum Occurrence, no solution will be found fulfilling both the requisites of containing the desired conformation and of being compatible with the experimental data. Such process is exemplified in figure 2: the four boxes represent 4 different ensembles, containing the desired conformation (represented as a red star) at different weight (represented by the dimension of the red star): the fourth one is no more compatible with the experimental data.&lt;br /&gt;
[[Image:MO_ex_proteopedia.png|thumbnail|left|400px|Figure 2: Exemplification of the process of determination of maximum occurrence for a selected conformation.]] &lt;br /&gt;
The Maximum Occurrence approach has been developed using mainly paramagnetism-based NMR restraints and SAXS data, but it is well compatible with all the biophysical tools providing experimental data that are averages over all the states sampled by the system.&lt;br /&gt;
== Case Study: [[Calmodulin]] ==&lt;br /&gt;
Calmodulin (in this case N60D Calmodulin&amp;lt;ref&amp;gt;PMID:12834353&amp;lt;/ref&amp;gt;(PDB ENTRIES [[1sw8]],[[2k0j]],[[2k61]])) is a two-domain protein experiencing high mobility in the central region&amp;lt;ref&amp;gt;PMID:1606151&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;PMID:3365370&amp;lt;/ref&amp;gt;. Paramagnetic NMR restraints as pseudocontact shifts (PCS) and self-orientation residual dipolar couplings (RDC) provided further insight in the description of such conformational heterogeneity&amp;lt;ref&amp;gt;doi:10.1073/pnas.0308641101&amp;lt;/ref&amp;gt;.&lt;br /&gt;
[[Image:Movie_MOforproteopedia.gif|thumbnail|400px|Figure 3: Orientation tensor representation for 400 conformational states of Calmodulin, color coded according to their MO values (from less than 5% in blue to more than 30% in red).To better explain their meaning, 10 randomly chosen models are shown as cartoons and then replaced by the three axes of their color-coded orientation tensors.]] &lt;br /&gt;
For this study, 400 conformers were chosen randomly, with the only requisite to be sterically allowed, and their maximum occurrence was evaluated against three sets of PCS (due to Tb&amp;lt;sup&amp;gt;3+&amp;lt;/sup&amp;gt;,Dy&amp;lt;sup&amp;gt;3+&amp;lt;/sup&amp;gt; and Tm&amp;lt;sup&amp;gt;3+&amp;lt;/sup&amp;gt;) and three sets of RDC (from the same metals), both measured at  [http://www.cerm.unifi.it CERM (in Florence)], and X-rays scattering data up to 2nm&amp;lt;sup&amp;gt;-1&amp;lt;/sup&amp;gt;, as recoded on the X33 beamline at  [http://www.embl-hamburg.de/ExternalInfo/Research/Sax/ EMBL, DESY, Hamburg].&lt;br /&gt;
The results of the calculations are represented in figure 3: Orientation tensors, centered in the center of mass of the C-terminal domain, are shown color coded according to their MO value (from less than 5% in blue to more than 30% in red). &lt;br /&gt;
&lt;br /&gt;
== Bibliography ==&lt;br /&gt;
&amp;lt;references/&amp;gt;&lt;/div&gt;</summary>
		<author><name>Enrico Ravera</name></author>
	</entry>
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