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I have written the following code in Perl. I want to iterate through a string 3 positions (characters) at a time. If TAA, TAG, OR TGA (stop codons) appear, I want to print till the stop codons and remove the rest of the characters.

Example:

data.txt

ATGGGTAATCCCTAGAAATTT

ATGCCATTCAAGTAACCCTTT

Answer:

ATGGGTAATCCCTAG (last 6 characters removed)

ATGCCATTCAAGTAA (last 6 characters removed)

(Each sequence begins with ATG).

Code:

#!/usr/bin/perl -w
open FH, "data.txt";
@a=<FH>;
foreach $tmp(@a)
{
for (my $i=0;$i<(length($tmp)-2);$i+=3)
{
if ($tmp=~ /(ATG)(\w+)(TAA|TAG|TGA)\w+/)
{
print "$1$2$3\n";
}
else 
{ print "$tmp\n"; }
$tmp++;
}
}
exit;

However, my code is not giving the correct result. There should not be any overlaps in the characters (I want to move every 3 characters).

Can someone suggest how to fix the error?

Thanks!

share|improve this question
    
Do you want to remove everything after the last of the stop codons, or do you want to remove everything after the first of the stop codons? –  ikegami Apr 1 '12 at 15:18
1  
I want to remove everything after the first stop codon. –  zock Apr 1 '12 at 15:23

4 Answers 4

up vote -1 down vote accepted

Script:

#!/usr/bin/perl

use strict;
use warnings;

open FH, "data.txt";
my @a = <FH>;

foreach (@a) {
  print /^(ATG(...)*?(TAA|TAG|TGA))/? $1 : $_, "\n";
}

Output:

ATGGGTAATCCCTAG
ATGCCATTCAAGTAA
share|improve this answer
    
It works perfectly. Thanks for the help @stackoverflow. –  zock Apr 2 '12 at 4:34

May I suggest a reading of perlretut (about 4 paragraphs down from here)? It actually covers almost exactly this situation with avoiding overlaps and finding stop codons.

share|improve this answer

I think this code will do. It uses \w{3} - three-symbol codons as you need.

#!/usr/bin/perl -w
open FH, "data.txt";
@a=<FH>;
foreach $tmp(@a) {
  if ($tmp=~ /^(ATG(?:\w{3})*(?:TAA|TAG|TGA)).*/) {
    print "$1\n";
  } else {
    print "$tmp\n";
  }
}
share|improve this answer
    
...iterate through a string 3 positions (characters) at a time... \w{3} is not for any 3 characters –  Ωmega Apr 1 '12 at 16:04

You say you want to remove everything after the first stop codon. If so, all you need is

while (<FH>) {
   s/(?<=TAA|TAG|TGA).*//;
   print;
}

But then there's the mystical "I want to iterate through a string 3 positions (characters) at a time" requirement. That doesn't make any sense. Perhaps you want the match to occur at a position that's divisible by three? If so, you'd use

s/^(?:.{3})*?(?:TAA|TAG|TGA)\K.*//;    # Requires 5.10+
s/^((?:.{3})*?(?:TAA|TAG|TGA)).*/$1/;  # Backwards compatible
share|improve this answer
    
...iterate through a string 3 positions (characters) at a time... that 3 is what is important –  Ωmega Apr 1 '12 at 16:03
    
@stackoverflow, The first pattern does look only three characters at a time. The second doesn't, because it's possible to match more than three characters by only looking at 3. –  ikegami Apr 1 '12 at 17:04
1  
@zock, Answer updated –  ikegami Apr 1 '12 at 17:08
    
You updated your response, so now you see your mistake in original response :) Also - there is no need to use ?: grouping, as you use just $1 anyway... –  Ωmega Apr 1 '12 at 17:13
    
@stackoverflow, Backwards. I do need to use grouping ((?:)); I don't require capturing (()) as well. –  ikegami Apr 1 '12 at 19:52

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