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How many calcium ions are in this structure?

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What is the date this entry was deposited to the PDB?

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Scroll back up to the top of the summary page. In the blue border on the left of the page click the link entitled "View Structure". Most of the interactive 3D displays require downloading and installing software. For those who do not wish to do this, view the high (500 X 500) resolution ribbons image under "Still Images". This is a ribbons "backbone" model of a protein, that includes the calcium ions, but does not show the sidechains of the individual amino acids. Compare the ribbons model with the cylinders model, wherein all the helices are shown as cylinders. These images are both made with the same atomic coordinates from the 3CLN file, but the coordinates can be modeled in many different ways, depending on what properties the image renderer wants to illustrate.

Now, select the "Download/Display File" option listed in the blue border on the left. For those files that need to be downloaded for making images, usually the text file format is preferred because many of the graphics programs will not accept the html format file. In the table shown under the "Display the Structure File" option, choose the PDB text file format, complete with coordinates. Now, take a look at the contents of the files.

What was the experimental method for determining the structure of calmodulin in the entry 3CLN?

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The first column of the PDB file contains an identifier for the type of information contained on that line. For example, JRNL, is the identifier for all lines containing the literary citation(s) for the journal(s) where the structure was published. The first section of the PDB file is the Title Section, which begins with a line containing the identifier HEADER and continues until the end of the lines containing the identifier REMARK. This section includes information about the experimental method used to obtain the atomic coordinates present in the file. The 3CLN structure is an older entry into the PDB, and does not contain a great deal of information about experimental methods and statistics, however newer entries to the PDB are required to have more information. Scroll down until you see the ATOM identifier in the first column. This is the beginning of the atomic coordinates listing and this section of the file should look something like the figure illustrated below.

Pdb coordinate file format

Each separate column in a given section of a PDB file is designated as a different "field". The format of the coordinate section of the PDB file is illustrated above.

The 5th column of this file lists the residue number. Notice that in the 3CLN file the first residue number is 5. This is mentioned in the REMARKS section at the beginning of the file, as it should be.

What explanation is given for the missing amino acid residues?

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The PDB offers a syntax directory to help interpret the lines and columns in each section of a PDB file. Scroll back to the top of this page and click on the PDB icon in the upper left hand corner to return to the PDB home page. Locate the link entitled "FILE FORMATS". Under PDB File Format, select the most current version of the File Format Contents Guide. Scroll through the Table of Contents listed on the left side of the page. Beginning with the Title Section, links are provided for every possible type of line identifier that can be found within a PDB file. Under the Coordinate Section, click on the link for the line identifier ATOM to call up the Record Format listing for the atomic coordinates section.Each possible field in an item line is listed according to the character column numbers assigned to the field. Not every available field will always be used in a file. For instance, in the Record Format listing, the residue sequence number is listed in the 7th possible field, but the 3CLN file only uses 5 of the first 7 fields and so the residue number is the 5th column. This is because the fields altLoc and chainID are not required in the 3CLN file.

It is common to have more than one structure present in the PDB for a medically or scientifically important protein or nucleic acid, particularly if the structures represent genetically engineered mutants of the same biological molecule, similar molecules from different organisms, or the same molecule bound to different ligands. Return to the PDB home page (the PDB home page icon is always in the upper left hand corner). Enter the accession code 1CFC as a query to the PDB.

What biological molecule is represented by this entry?

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View the summary page for this structure. What was the experimental method used to determine this structure?

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Are any ligands bound to this molecule?

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Notice that 25 coordinate sets, representing slightly different molecular conformations, are present. This is characteristic of solution studies, where the molecule is dynamic. Use the "View Structure" link to view the ribbons image of a superposition of the 25 models. The parts of the molecule that overlap well between the models are areas that maintain a relatively rigid structure even in solution, while the parts of the molecule that do not overlap well are dynamic in solution. Use the "Download/Display File" link to display the PDB text file, header only, no coordinates.

Why, in this case, might it be undesirable to display the file complete with coordinates? (If uncertain, choose the "complete with coordinates" option and look through the coordinate file to find out.)

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Before closing this file, view the experimental methods discussed in the Title Section to see how they differ from the 3CLN entry.

Return to the PDB home page and search by keyword calmodulin.

How many structures are found in response to the query?

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Are all of the matches returned structures of calmodulin?

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Explain the answer to problem 11 in terms of the way the search engine responds to the keyword "calmodulin" that was used as a query.

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If the query results at the top of the page state that there are structures being processed or "on hold", these listings can be accessed by clicking on the link entitled "matching your query". The Processing/Hold database contains structures that are soon-to-be released. The NIH has a strict release policy, requiring that any structures derived through experiments supported by NIH grants be deposited at the time of submission of a research article to a journal, and although a hold may be placed on these coordinates during the submission process, the rules state that the coordinates are to be released upon publication.

Questions & Answers

A golfer on a fairway is 70 m away from the green, which sits below the level of the fairway by 20 m. If the golfer hits the ball at an angle of 40° with an initial speed of 20 m/s, how close to the green does she come?
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A mouse of mass 200 g falls 100 m down a vertical mine shaft and lands at the bottom with a speed of 8.0 m/s. During its fall, how much work is done on the mouse by air resistance
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2. A sled plus passenger with total mass 50 kg is pulled 20 m across the snow (0.20) at constant velocity by a force directed 25° above the horizontal. Calculate (a) the work of the applied force, (b) the work of friction, and (c) the total work.
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you have been hired as an espert witness in a court case involving an automobile accident. the accident involved car A of mass 1500kg which crashed into stationary car B of mass 1100kg. the driver of car A applied his brakes 15 m before he skidded and crashed into car B. after the collision, car A s
Samuel Reply
can someone explain to me, an ignorant high school student, why the trend of the graph doesn't follow the fact that the higher frequency a sound wave is, the more power it is, hence, making me think the phons output would follow this general trend?
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Nevermind i just realied that the graph is the phons output for a person with normal hearing and not just the phons output of the sound waves power, I should read the entire thing next time
Joseph
Follow up question, does anyone know where I can find a graph that accuretly depicts the actual relative "power" output of sound over its frequency instead of just humans hearing
Joseph
"Generation of electrical energy from sound energy | IEEE Conference Publication | IEEE Xplore" ***ieeexplore.ieee.org/document/7150687?reload=true
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A string is 3.00 m long with a mass of 5.00 g. The string is held taut with a tension of 500.00 N applied to the string. A pulse is sent down the string. How long does it take the pulse to travel the 3.00 m of the string?
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Source:  OpenStax, Bios 533 bioinformatics. OpenStax CNX. Sep 24, 2008 Download for free at http://cnx.org/content/col10152/1.16
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