User:Eric Martz/Introduction to Structural Bioinformatics I: Difference between revisions

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==II. Protein Structure and Structural Bioinformatics==
==II. Protein Structure and Structural Bioinformatics==
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:<span style="font-size:130%">1. [[Amino acid]] '''sequence''' + protein chain '''conformation''' = protein '''function'''.</span>
:<span style="font-size:130%">1. [[Amino acid]] '''sequence''' + protein chain '''conformation''' = protein '''function'''.</span>
::A. [http://www.umass.edu/molvis/workshop/allstruc/whycare.htm Why do we care?]
::A. [http://www.umass.edu/molvis/workshop/allstruc/whycare.htm Why do we care?]
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:<span style="font-size:130%">2. Structure Knowledge.</span>
:<span style="font-size:130%">2. Backbone Representation.</span>
 
::A. [http://www.umass.edu/molvis/tutorials/hemoglobin/pepstruc.htm Peptides and Backbones] (within a tutorial on hemoglobin)
::B. [http://firstglance.jmol.org/fg.htm?mol=1pgb Small Protein in FirstGlance] (use Vines, Cartoon)
 
 
:<span style="font-size:130%">3. Structure Knowledge.</span>


::A. Although sequence specifies fold, scientists '''cannot yet predict the fold from the sequence'''. Therefore, fold must be determined by empirical (experimental) methods. The most common methods for determining the 3D structure of a protein molecule are:
::A. Although sequence specifies fold, scientists '''cannot yet predict the fold from the sequence'''. Therefore, fold must be determined by empirical (experimental) methods. The most common methods for determining the 3D structure of a protein molecule are:
:::*[[X-ray crystallography]], 88%.
:::*[[X-ray crystallography]], 88%.
::::Cannot determine the structure of [[Intrinsically Disordered Protein|intrinsically unstructured]] loops or molecules.
::::*Cannot determine the structure of [[Intrinsically Disordered Protein|intrinsically unstructured]] loops or molecules.
::::*Result is a single model representing the average of the molecules in the crystal.
::::*[[Resolution]] reflects the degree of order or disorder in the crystal.
:::*[[Nuclear magnetic resonance]] (NMR) in aqueous solution, 11%.
:::*[[Nuclear magnetic resonance]] (NMR) in aqueous solution, 11%.
::::*NMR is limited to small proteins (30 kD or smaller).
::::*NMR is limited to small proteins (30 kD or smaller).
::::*Result is an ensemble of models consistent with the data. Examples: [[2bbn]]
:::*High resolution cryo-electron microscopy, 0.5%.
:::*High resolution cryo-electron microscopy, 0.5%.


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==III. Choose a Molecule to Explore==
==III. Choose a Molecule to Explore==
*Choose a molecule that includes '''protein and ligand'''. It may also include nucleic acid, but must have protein and ligand.
*Choose a molecule that includes '''protein'''. It may also include ligand and/or nucleic acid, but must have protein.
*Be sure to note the '''4-character PDB code''' of the molecule you choose. The PDB code makes it easy to retrieve the molecule and information about it. Here are some ways to find a protein with known structure:
*Be sure to note the '''4-character PDB code''' of the molecule you choose. The PDB code makes it easy to retrieve the molecule and information about it. Here are some ways to find a protein with known structure:
# Atlas of Macromolecules ([http://atlas.molviz.org Atlas.MolviZ.Org]). Choose a "straightforward" molecule that has ligand.
# Atlas of Macromolecules ([http://atlas.molviz.org Atlas.MolviZ.Org]). Choose a "straightforward" molecule that has ligand.
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:B. The abstract of the publication about this structure, which usually mentions the '''function of the molecule''' if known.
:B. The abstract of the publication about this structure, which usually mentions the '''function of the molecule''' if known.
:C. The '''number of polymer chains''' under ''About this Structure''.
:C. The '''number of polymer chains''' under ''About this Structure''.
:D. Full '''names of ligands and non-standard residues''' (displayed when their green links are clicked beneath the molecule). Example: [[2src]].
:D. Full '''names of ligands and non-standard residues''' (displayed when their '''<font color="#00c000">green links</font>''' are clicked beneath the molecule). Example: [[2src]].
:E. Evolutionary conservation.
:E. Evolutionary conservation.
::See [[Introduction to Evolutionary Conservation]].
::See [[Introduction to Evolutionary Conservation]].
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Each slide MUST be labeled at the top with its section number, e.g. ''Section 1''.
Each slide MUST be labeled at the top with its section number, e.g. ''Section 1''.


Each question below may be answered in a single slide, or multiple slides. For example, suppose you want to show two snapshots for ''Section 3'', and make separate comments. You may choose to use two slides, labeled ''Section 3A'' and ''Section 3B''.
Each Section below may be answered in a single slide, or multiple slides. For example, suppose you want to show two snapshots for ''Section 3'', and make separate comments. You may choose to use two slides, labeled ''Section 3A'' and ''Section 3B''.


<font color='e000e0'>This is not a test. It is to help you learn by doing. Ask for help!</font>
<font color='e000e0'>This is not a test. It is to help you learn by doing. Ask for help!</font>
<br>
[http://www.umass.edu/molvis/martz/lectures/labmolgen/martz-565-2012.ppt Sample Completed Powerpoint Assignment] (You may download it, rename the file, and use it as a template.)


===Section 1: Identity===
===Section 1: Identity===
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#Double click the hydrogen bond donor and acceptor atoms to insert a distance monitor.
#Double click the hydrogen bond donor and acceptor atoms to insert a distance monitor.


Describe the moiety you selected as a target. Include a showing a hydrogen bond.
Describe the moiety you selected as a target. Include a <font color='e000e0'><b>snapshot</b></font> showing a hydrogen bond.


==VI. See Also==
==VI. See Also==