64
sixty four
No. No two tigers have the same pattern. They are analogous to human finger prints.
Some animals, such as primates, koalas, and pandas, have unique patterns on their paws or feet that can be used for identification, but they are not exactly the same as human fingerprints. These patterns are often used by researchers to track and study individual animals in the wild.
It is around the same.
Yes part of the hearts are the same
yes
There are 61 codons that specify the twenty types of amino acids, since multiple codons can code for the same amino acid due to the redundancy of the genetic code.
There are many tissues that are similar, but for the most part there is no one tissue that is exactly the same between humans and even chimpanzees.
Leucine is encoded by six different codons in the genetic code: UUA, UUG, CUU, CUC, CUA, and CUG. These codons correspond to the amino acid leucine during protein synthesis. The redundancy in codons for leucine is an example of the genetic code's degeneracy, where multiple codons can specify the same amino acid.
During protein synthesis, different codons can code for the same amino acid because of redundancy in the genetic code. This means that multiple codons can specify the same amino acid, allowing for flexibility and error correction in the translation process.
African Americans are exactly the same as everyone else! They do exactly what every other human does
Yes, different codons can code for the same amino acid in the genetic code. This redundancy is known as degeneracy in the genetic code.
Yes, multiple codons can code for the same amino acid in the genetic code. This redundancy is known as degeneracy in the genetic code.
There are 64 different codons in the genetic code, which are formed by combinations of the four nucleotide bases (adenine, cytosine, guanine, and uracil/thymine). These codons specify the 20 standard amino acids used to build proteins, as well as three stop codons that signal the termination of protein synthesis. Although there are only 20 amino acids, the redundancy in the genetic code allows multiple codons to encode the same amino acid. This diversity of codons is essential for the complexity of protein synthesis in our bodies.
Glycine is encoded by four codons in the genetic code: GGU, GGC, GGA, and GGG. These codons correspond to the amino acid glycine during the process of protein synthesis. Due to the redundancy of the genetic code, multiple codons can specify the same amino acid, which is the case for glycine.
Some codons code for the same amino acid as another codon because of redundancy in the genetic code. This redundancy allows for flexibility and accuracy in protein synthesis, as multiple codons can code for the same amino acid, providing a buffer against errors in DNA replication or transcription.
Some codons code for the same amino acid because of redundancy in the genetic code. This redundancy allows for some flexibility and error tolerance in protein synthesis.
The code for creating amino acids is said to be redundant because some codons code for the same amino acid (i.e. there is redundancy because several codons have the same function). For example, the RNA codons AAA and AAG both code for the amino acid Lysine. The codons ACU, ACC, ACA and ACG all code for Threonine.