81 Meiosis I
Interphase
Meiosis is preceded by an interphase which is nearly identical to the interphase preceding mitosis. During interphase, the DNA of the chromosomes is replicated (during S phase). After DNA replication, each chromosome becomes composed of two identical copies (called sister chromatids) that are held together at the centromere.
Meiosis I
Meiosis is preceded by an interphase which is nearly identical to the interphase preceding mitosis. During interphase, the cell grows, ensures it has enough energy and other required molecules for division, and replicates its DNA.
During DNA replication, each chromosome is replicated to produce two identical copies, called sister chromatids, that are held together at the centromere. The centrosomes, which are the structures that organize the microtubules of the meiotic spindle, also replicate. This prepares the cell to enter meiosis I.
Early in meiosis I, the chromosomes condense (wind up tightly). As the nuclear envelope begins to break down, the proteins associated with homologous chromosomes bring the pair close to each other. After the homologous chromosomes are aligned tightly with each other, the genes on each of the chromatids are precisely aligned with each other. This process does NOT occur during mitosis.
After the genes on the chromatids of the homologous chromosomes are aligned precisely with each other, an exchange of chromosome segments between non-sister homologous chromatids occurs. This is called crossing over (Figure 3). The crossover events are the first source of genetic variation produced by meiosis. A single crossover event between homologous non-sister chromatids leads to a reciprocal exchange of equivalent DNA between a maternal chromosome and a paternal chromosome. Now, when that sister chromatid is moved into a gamete, it will carry some DNA from the mother of the person who made the gamete and some DNA from the father of the person who made the gamete. The recombinant sister chromatid has a combination of maternal and paternal genes that did not exist before the crossover.
After crossing-over, microtubules grow from centrosomes placed at opposite poles of the cell and attach to one of the two fused homologous chromosomes. The microtubules attach at each chromosomes’ centromeres. With each member of the homologous pair attached to opposite ends of the cell, the microtubules can pull now the homologous chromosomes apart. The cell undergoes cytokinesis to divide into two new cells. The end result of meiosis I is that the homologous pairs of chromosomes have been separated so each new cell only contains one copy of each homologous chromosome.
The orientation of each pair of homologous chromosomes at the center of the cell is random. This randomness, called independent assortment, is the physical basis for the generation of the second form of genetic variation in offspring (Figure 5). Consider that the homologous chromosomes of a sexually reproducing organism are origina