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I am new to python and would be grateful for some help.

I have this script that counts every three bases in a sequence until it identifies a stop codon, then breaks and returns the value. This works for each reading frame 0, +1, +2.

I would like it to return a value of 0 it the script runs to the end of the sequence before identifying a stop codon. At the moment the script returns 18 for count0 which should be 0 as the sequence ends before finding either a "TAG" or a "TAA"

Any help would be gratefully appreciated!

seq="TCATTCTaTTTAAAAAAatATAAAaGGGgTTTTGGGgTTTtGGGGTTTtGGGG"

stop_codons = ["TAG", "TAA"]
count0 = 0
n = 0
while n < len(seq):
    if seq[n:n+3] in stop_codons:
        break
    count0 += 1
    n += 3
print count0      

count1 = 0
n = 1
while n < len(seq):
    if seq[n:n+3] in stop_codons:
        break
    count1 += 1
    n += 3
print count1      

count2 = 0
n = 2
while n < len(seq):
    if seq[n:n+3] in stop_codons:
        break
    count2 += 1
    n += 3
print count2 

Result:

18
3
6
share|improve this question
    
In your sample it finds TAA (I can see it too), so it prints 18. But you say it 'should be 0 as the sequence ends before finding either a "TAG" or a "TAA"' –  doctorlove Sep 4 '13 at 9:13
4  
Write a function taking n as parameter, please. You'll avoid a lot of code repetition and mistakes! –  jimifiki Sep 4 '13 at 9:26
    
@doctorlove The TAA is in frame +1. that is starting from CATTCT... There is no stop in frame 0 TCATTCT... –  sheaph Sep 4 '13 at 9:37

6 Answers 6

up vote 0 down vote accepted
seq="TCATTCTaTTTAAAAAAatATAAAaGGGgTTTTGGGgTTTtGGGGTTTtGGGG"
stop_codons = ["TAG", "TAA"]

def printcount(seq, stop_codons, start):
    found = False
    count = 0
    n = start
    while n < len(seq):
        if seq[n:n+3] in stop_codons:
            found = True
            break        
        count += 1
        n += 3
    print count if found else 0

printcount(seq, stop_codons, 0)
printcount(seq, stop_codons, 1)
printcount(seq, stop_codons, 2)
share|improve this answer
    
This is exactly what i was looking to do. Thanks for your help! –  sheaph Sep 4 '13 at 10:09
    
You're welcome. Please accept my (or one of the others as most work) answer. meta.stackexchange.com/questions/5234/… –  Rhand Sep 4 '13 at 13:23

A simple fix would be to do something like this. Nevertheless you should consider refactor your code.

stop_codons = ["TAG", "TAA"]
count0 = 0
n = 0
found = False
while n < len(seq):
    if seq[n:n+3] in stop_codons:
        found = True
        break
    count0 += 1
    n += 3

if not found:
    count0 = 0
share|improve this answer

I recommend pushing the iterating code into a function:

def get_codon_index(seq, start_idx):
    count = 0
    n = start_idx
    while n < len(seq):
        if seq[n:n+3] in stop_codons:
            return count
        count += 1
        n += 3
    return -1

This way you save the effort of introducing boolean flags and avoid code duplication.

I return -1 instead of 0, because 0 might be an actual index of a codon (if the codon is right at the beginning of your sequence).

share|improve this answer
    
Thanks for your help Johannes –  sheaph Sep 4 '13 at 10:07

You search for the stop codon, and if it finds it, it exits the loop prematurely. But otherwise, it runs the complete loop, exits the loop when n == len(seq) and then still prints the count.

Two solutions:

Print only when you find a stop codon:

count1 = 0
n = 1
while n < len(seq):
    if seq[n:n+3] in stop_codons:
        print count1
        break
    count1 += 1
    n += 3

or set a stopped flag:

count1 = 0
n = 1
stopped = False
while n < len(seq):
    if seq[n:n+3] in stop_codons:
        stopped = True
        break
    count1 += 1
    n += 3
if stopped:
    print count1   
share|improve this answer

this code will loop through your sequence and stops when it finds a TAA or TAG sequence returning the position of the first character of the stop codon

seq="TCATTCTaTTTAAAAAAatATAAAaGGGgTTTTGGGgTTTtGGGGTTTtGGGG"

list = ["z", "z", "z"] # otherwise the list will not be of 3 characters
i = 0

for letter in seq:
    list.pop(0)
    list.append(letter)
    codon = "".join(list)
    i = i + 1
    if codon == "TAG" or codon == "TAA":
        print i - 2 # to print the position of T
        break
share|improve this answer
    
s./threw/through –  doctorlove Sep 4 '13 at 9:45
    
thanks @doctorlove –  OAnt Sep 4 '13 at 10:18

Do yourself a favor and don't re-invent the wheel especially when BioPython is freely available and widely used.

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