Radioisotopes and Life Processes (Revised)Kisieleski, Walter E.
Science
Radioisotopes and Life Processes (Revised)
Kisieleski, Walter E.
Biology; Radioactive tracers
RNA synthesis is investigated with radioactive tracers in the same way
as DNA synthesis. If we can mark, with a radioactive atom, a small
molecule that is incorporated into newly formed RNA, we can then trace
the course of the labeled RNA molecule with a radiation-detection
device. DNA had one advantage in this regard—the fact that one compound,
thymidine, was a precursor of DNA, a specific material that could be
incorporated only into DNA. We do not know similar specific precursors
of RNA. But we know several precursors that are predominantly
incorporated into RNA; the most common of these are the nucleosides
adenine, cytidine, and uridine, and the smaller molecule, orotic acid.
All these precursors can be labeled with either ³H or ¹⁴C, and their
incorporation into RNA can be measured.
Detecting RNA with Autoradiography
As in DNA synthesis, we can use autoradiography to follow the
incorporation of precursors into RNA. By proper treatment of the
tissues, we can make sure that all the radioactivity visible by
autoradiography is due to labeled RNA, even though some of the precursor
also enters DNA molecules. Even so, the kind of information obtained
from autoradiographs of tissues exposed to RNA precursors is different
from that obtained with DNA precursors. The advantage of high-resolution
autoradiography in DNA studies is the possibility of identifying
particular cells that are synthesizing nucleic acid. This advantage is
apparently lost in the case of RNA. The reason is that, at any given
time, only a few cells are making DNA, whereas practically all cells are
synthesizing RNA constantly. The only exceptions are cells in the
midpoint of mitosis. At the beginning (prophase) and at the end of cell
division (telophase), RNA is synthesized. If we want a quantitative
measurement of RNA synthesis, other methods, to be examined presently,
are considerably more precise. But autoradiography can still give us
valuable information.
Other Methods of Detecting RNA
If we look at cells soon after they have been exposed to an RNA
precursor, we find that the radioactivity detectable by autoradiography
is only in the nuclei of the cells. No radioactivity can be detected in
the cytoplasm, although we know that the cytoplasm of living cells
contains large amounts of r-RNA and s-RNA. One or two hours later,
however, radioactive RNA appears in the cytoplasm as well as in the
nucleus. What autoradiography is telling us is that RNA is made in the
nucleus and then is slowly transferred to the cytoplasm.
Autoradiography cannot tell us whether the RNA that has been newly
synthesized in the nuclei of cells is m-RNA, s-RNA, or r-RNA. The
methods necessary to make this distinction are based on the chemical
fractionation of the tissue, isolation of RNA, determination of its
amount by quantitative analysis, and determination of the amount of
radioactivity by physical methods. Let us examine these steps
separately.
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