Two molecules of DNA instead of the original one; each molecule now contains one strand from the double helix of the original molecule, and one new strand
two identical strands of DNA
DNA replication begins in areas of DNA molecules are called origins of replication.
Prokaryotic DNA replication has a single origin of replication, leading to two replication forks. In contrast, eukaryotic DNA replication has multiple origins of replication, resulting in multiple replication forks forming along the DNA molecule.
DNA is copied during a process called DNA replication. This process occurs in the nucleus of a cell and involves making an exact copy of the original DNA molecule. DNA replication is essential for cell division and passing genetic information from one generation to the next.
DNA replication produces a copy of the DNA. At the same time the cell in which the DNA is to be found splits into two with a copy of the DNA in each. DNA replication is caused by cell replication during the process of mitosis.
Transcription.
DNA polymerase adds nucleotides to the growing DNA strand at the replication fork during the process of DNA replication.
what would be the end product of mitosis
The site of DNA replication in eukaryotes is the nucleus. Replication occurs in the nucleus because this is where the DNA is stored. The process involves unwinding the DNA double helix and synthesizing new strands of DNA using the existing strands as templates.
DNA replication
DNA replication ends when the DNA polymerase reaches the end of the linear DNA molecule or meets a previously replicated segment, resulting in two complete double-stranded DNA molecules. Each of these new DNA molecules consists of one original (parental) strand and one newly synthesized strand, a process known as semi-conservative replication. The final products of DNA replication are two identical DNA molecules, each containing one old and one new strand, ensuring genetic continuity during cell division.
During DNA replication, replication bubbles form when the DNA double helix unwinds and separates into two strands. Enzymes called helicases unwind the DNA, creating a replication fork where new DNA strands can be synthesized. This process allows for multiple replication bubbles to form along the DNA molecule, enabling efficient and accurate replication.