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Is it possible to do a find/replace using regular expressions on a string of dna such that it only considers every 3 characters (a codon of dna) at a time.

for example I would like the regular expression to see this:
dna="AAACCCTTTGGG"
as this:
AAA CCC TTT GGG

If I use the regular expressions right now and the expression was
Regex.Replace(dna,"ACC","AAA") it would find a match, but in this case of looking at 3 characters at a time there would be no match.

Is this possible?

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2  
Why not insert a space at every 3rd place in your string itself (the way you show) and then run your regex? –  Anirudh Ramanathan May 11 '13 at 17:39
    
I would not use regular expressions for this. It shouldn't be very hard to implement the logic you're looking for with basic operations. Also consider using a StringBuilder (if this is C# as I suspect) to avoid having to copy and create a new string for each replacement (since DNA strings can be pretty large). –  zneak May 11 '13 at 17:42
    
In Javascript you could get an array of codons like this: 'dna="AAACCCTTTGGG"'.match(/dna="(\w+)"/)[1].match(/\w{1,3}/g), and then you could just join the array into a string with spaces separating the elements. –  Radu May 11 '13 at 17:47

3 Answers 3

Why use a regex? Try this instead, which is probably more efficient to boot:

public string DnaReplaceCodon(string input, string match, string replace) {
  if (match.Length != 3  || replace.Length != 3) 
      throw new ArgumentOutOfRangeException();

  var output = new StringBuilder(input.Length);
  int i = 0;
  while (i + 2 < input.Length) {
    if (input[i] == match[0] && input[i+1] == match[1] && input[i+2] == match[2]) {
      output.Append(replace);
    } else {
      output.Append(input[i]);
      output.Append(input[i]+1);
      output.Append(input[i]+2);
    }

    i += 3;
  }

  // pick up trailing letters.
  while (i < input.Length)   output.Append(input[i]);

  return output.ToString();
}
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Thanks I may try this also. I'm not sure which one is faster though.I've never used StringBuilder but I'll check it out. –  techdog May 11 '13 at 20:19
    
Strings are immutable; when you are building a string from pieces then every piece, and every append of a piece, requires the instantiation of another String object. All of this heap allocation and garbage collection can add up over time. In the code above, if it is acceptable to override the input string in place, then that would be even more efficient than the StringBuilder, using the built-in indexer for String. –  Pieter Geerkens May 11 '13 at 20:24
    
I'm going to try this solution also. Are you saying that I can avoid creating new strings and instead just keep replacing the same string to avoid garbage collection problems. –  techdog May 11 '13 at 22:06
    
Yes. StringBuilder supports a wider variety of actions, but if all you are doing is in-place substitutions, you can just use the String indexer like this: input[i] = replace[0]; input[i+1] = replace[1]; –  Pieter Geerkens May 11 '13 at 23:57

Solution

It is possible to do this with regex. Assuming the input is valid (contains only A, T, G, C):

Regex.Replace(input, @"\G((?:.{3})*?)" + codon, "$1" + replacement);

DEMO

If the input is not guaranteed to be valid, you can just do a check with the regex ^[ATCG]*$ (allow non-multiple of 3) or ^([ATCG]{3})*$ (sequence must be multiple of 3). It doesn't make sense to operate on invalid input anyway.

Explanation

The construction above works for any codon. For the sake of explanation, let the codon be AAA. The regex will be \G((?:.{3})*?)AAA.

The whole regex actually matches the shortest substring that ends with the codon to be replaced.

\G            # Must be at beginning of the string, or where last match left off
((?:.{3})*?)  # Match any number of codon, lazily. The text is also captured.
AAA           # The codon we want to replace

We make sure the matches only starts from positions whose index is multiple of 3 with:

  • \G which asserts that the match starts from where the previous match left off (or the beginning of the string)
  • And the fact that the pattern ((?:.{3})*?)AAA can only match a sequence whose length is multiple of 3.

Due to the lazy quantifier, we can be sure that in each match, the part before the codon to be replaced (matched by ((?:.{3})*?) part) does not contain the codon.

In the replacement, we put back the part before the codon (which is captured in capturing group 1 and can be referred to with $1), follows by the replacement codon.

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Wow. A proof and explanation and speed test. Amazing. The Regex seems like magic so it may take some time to digest your solution. Thanks. –  techdog May 11 '13 at 20:20
    
Seems to be an issue when trying to do multiple replacements. In succession I want to replace TTC with TTT, AGT with CCC and AAG with AAA. I start off with AAGTCT and first replace with TCT with TTT then it reads AAGTTT then for some reason it matches AGT and replaces it even though it is not a codon. The codons are AAG and TTT at that point. –  techdog May 11 '13 at 21:42
    
Also I am using multiple replacements like TTG|TTC would be replaced by TTT. I wonder if that's causing the problem. Like "\G((?:.{3})*?)TTG|TTC" –  techdog May 11 '13 at 21:48
    
@danielsavage: I repeat; this problem is not well-suited to a regex solution (even if one should exist). –  Pieter Geerkens May 11 '13 at 21:49
    
Actually maybe it's working, I forgot the $1 section. –  techdog May 11 '13 at 21:55

NOTE

As explained in the comment, the following is not a good solution! I leave it in so that others will not fall for the same mistake

You can usually find out where a match starts and ends via m.start() and m.end(). If m.start() % 3 == 0 you found a relevant match.

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No, this is not a good solution. For example, given CAAAAA and you want to find AAA. The engine will return a single match at index 1, which is invalid according to your method. While there is actually one valid match at index 3 (not return by engine, since the A is consumed in the match at index 1). –  nhahtdh May 11 '13 at 17:47
    
true, i did not think of this! –  luksch May 11 '13 at 17:49

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