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中心法则解释了遗传信息从 DNA 核苷酸到蛋白质氨基酸序列之间的流动过程。
RNA 是 DNA 和蛋白质之间缺失的一环
1900 年初,科学家发现 DNA 中存储了细胞功能所需的全部信息,而蛋白质则执行了其中的大部分功能。然而,多年以来,将遗传信息转化为功能蛋白的机制仍然是未知的。最初,人们认为单个…
分子生物学的中心法则指出,DNA 中编码的信息被传递给 RNA,然后 RNA 根据这些指令指导蛋白质的合成。
首先,在转录过程中,DNA 作为模板用于合成信使 RNA 或 mRNA。
mRNA 代表 DNA 编码链的一个拷贝,只是其中的胸腺嘧啶被尿嘧啶所取代。
接下来,核糖体将 mRNA 翻译成一条氨基酸链。
在此,信使RNA(mRNA)上由三个核苷酸组成的密码子与转运RNA(tRNA)分子上的互补序列即反密码子相结合。
每种tRNA根据特定的密码子与相应的氨基酸结合。
例如,密码子 CCA 与连接有脯氨酸的 tRNA 结合,而 AGC 则与连接有丝氨酸的 tRNA 结合。
通过这种方式,遗传密码决定了所生成多肽中氨基酸的排列顺序,该多肽随后经过进一步加工成为具有功能的蛋白质。
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Q1: What is the central dogma of molecular biology?
The central dogma describes how genetic information flows from DNA to proteins. DNA is transcribed into messenger RNA (mRNA), which is then translated by ribosomes into chains of amino acids called polypeptides. These polypeptides fold into functional proteins that perform cellular functions. This process explains how genetic instructions stored in DNA ultimately direct protein synthesis.
Q2: How does transcription convert DNA into mRNA?
During transcription, DNA serves as a template to synthesize mRNA in the nucleus. The mRNA sequence mirrors the DNA coding strand, except thymine nucleotides are replaced with uracil. In eukaryotes, the primary transcript is processed by removing non-coding regions, capping the 5' end, and adding a 3' poly-A tail to create mature mRNA, which is then exported to the cytoplasm for translation.
Q3: What role do codons and tRNA play in protein synthesis?
Codons are three-nucleotide sequences on mRNA that specify which amino acid should be added during translation. Transfer RNA (tRNA) molecules carry specific amino acids and bind to complementary anticodon sequences on mRNA. For example, the codon CCA binds to tRNA carrying proline, while AGC binds to tRNA carrying serine. This codon-anticodon pairing ensures amino acids are assembled in the correct order.
Q4: Why is the genetic code considered redundant?
The genetic code is redundant because 64 possible codons encode only 20 amino acids in eukaryotes. Multiple codons can specify the same amino acid, often differing only in the third nucleotide position. For instance, GUU, GUC, GUA, and GUG all code for valine. This redundancy minimizes harmful effects of mutations, since changes at the third codon position may not alter the amino acid or protein function.
Q5: How is the genetic code universal across organisms?
With few exceptions, most prokaryotic and eukaryotic organisms use the same genetic code for protein synthesis. This universality enables biotechnology applications like recombinant DNA technology, where human insulin genes are inserted into bacterial cells. The bacteria then perform transcription and translation to produce human insulin protein, which can treat diabetes. This demonstrates that genetic instructions are readable across different species.
Q6: Why was RNA discovered as the intermediary between DNA and proteins?
Early scientists knew DNA stores genetic information and proteins perform cellular functions, but the connection remained unclear. Two key observations in eukaryotes prompted the search for an intermediary: protein synthesis occurs in the cytoplasm, not the nucleus, and DNA cannot leave the nucleus. RNA was identified as this missing link, synthesized in the nucleus from DNA and exported to the cytoplasm where it directs protein production.
Q7: What is the start codon and why is it significant?
The start codon AUG signals where protein synthesis begins on mRNA. Unlike most codons that can specify multiple amino acids, AUG uniquely codes for methionine and marks the initiation point for translation. This codon ensures ribosomes begin reading the genetic code at the correct position, establishing the proper reading frame for accurate amino acid assembly throughout the entire polypeptide chain.