DNA replication begins with the double helix structure of DNA.The enzyme helicase begins to unwind the DNA strands by breaking the hydrogen bonds between base pairs.DNA polymerase then begins adding complementary nucleotides to each separated strand.Following strict base-pairing rules, Adenine pairs with Thymine, and Guanine pairs with Cytosine.This semi-conservative process results in two identical DNA molecules, each containing one original strand and one newly synthesized strand.Each new DNA molecule is an exact copy of the original, ensuring accurate genetic transmission during cell division.Transcription begins when RNA polymerase recognizes and binds to the promoter region of DNA.The enzyme creates a transcription bubble by unwinding a section of DNA.RNA polymerase builds an RNA strand using complementary base pairing, but uses uracil instead of thymine.The process continues until RNA polymerase reaches a termination sequence.At this point, the newly synthesized messenger RNA is released, carrying the genetic instructions for protein synthesis.This messenger RNA will carry the genetic information to the ribosomes for protein synthesis.After transcription, the pre-messenger RNA undergoes several important modifications in the nucleus.The initial transcript contains both exons, which code for proteins, and introns, which need to be removed.The first modification is adding a five prime cap, which protects the RNA and helps with protein synthesis later.At the other end, a string of adenine nucleotides is added, forming the poly-A tail, which increases RNA stability.The most complex modification is splicing, where introns are removed by a large protein complex called the spliceosome.The spliceosome precisely cuts out the introns and joins the exons together.The result is a mature messenger RNA, with only exons remaining, ready for transport to the cytoplasm.Special transport proteins recognize the modified RNA and guide it through nuclear pores.Once in the cytoplasm, the mature messenger RNA can begin protein synthesis.Translation occurs on ribosomes, which have three important sites: the E, P, and A sites.The messenger RNA contains codons - sequences of three nucleotides that code for specific amino acids.Transfer RNA molecules have anticodons that match specific codons, and carry corresponding amino acids.The first tRNA carries methionine, which is always the starting amino acid. It recognizes the start codon AUG.As translation continues, more tRNAs bring amino acids to the growing protein chain.Each amino acid is connected through peptide bonds, forming a growing protein chain.Let's review the key points about protein synthesis through translation.The sequence of codons in messenger RNA determines the order of amino acids in the protein.Transfer RNAs act as adaptor molecules, bringing the correct amino acids to the ribosome.The process continues until a stop codon is reached.Finally, the completed protein chain folds into its functional three-dimensional structure.This completes our journey from DNA to protein synthesis!
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