“Daily radiation treatment using a cobalt-60 device was started and
continued for 31 days. This was in September 1959. The cobalt-60 unit is
one that can be operated by remote control. It positions radioactive
cobalt over a collimator, which determines the size of the radiation
beam reaching the patient. The machine may be made to rotate around the
patient or can be used at any desired angle or position.
[Illustration: Showing:]
⁶⁰Co source
Tungsten alloy shielding
Shutter
Counterweight and personnel shield
“When the treatment series was in progress, the patient’s voice was
temporarily made worse, but it returned to normal within two months
after the treatment ended. The radiation destroyed the cancerous growth,
and frequent examinations over 6 years since have failed to reveal any
regrowth.
“The treatment spared the patient’s vocal cords, and his voice, airway,
and food passage were preserved.”
This dramatic tale with a happy ending is a good one with which to start
a discussion of how doctors use radioisotopes for treatment of disease.
General Principles
Radioisotopes have an important role in the treatment of disease,
particularly cancer. It is still believed that cancer is not one but
several diseases with possible multiple causes. Great progress is being
made in development of chemicals for relief of cancer. Nevertheless,
radiation and surgery are still the main methods for treating cancer,
and there are many conditions in which relief can be obtained through
use of radiation. Moreover, the imaginative use of radioisotopes gives
much greater flexibility in radiation therapy. This is expected to be
true for some years to come even as progress continues.
Radioisotopes serve as concentrated sources of radiation and frequently
are localized within the diseased cells or organs. The dose can be
computed to yield the maximum therapeutic effect without harming
adjacent healthy tissues. Let us see some of the ways in which this is
done.
Iodine-131 and Iodine-132
Iodine, as was mentioned earlier, concentrates in the thyroid gland, and
is converted there to protein-bound iodine that is slowly released to
the blood stream. Iodine-131, in concentrations much higher than those
used in diagnostic tests, will irradiate thyroid cells, thereby damage
them, and reduce the activity of an overactive thyroid
(hyperthyroidism). The energy is released within the affected gland, and
much of it is absorbed there. Iodine-131 has a half-life of 8.1 days. In
contrast, ¹³²I has a half-life of only 2.33 hours. What this means is
that the same weight of radioactive ¹³²I will give a greater radiation
dose than ¹³¹I would, and lose its activity rapidly enough to present
much less hazard by the time the iodine is released to the blood stream.
Iodine-132 is therefore often preferred for treatment of this sort.
Boron-10
Public-domain text, read in full here on John Shaqi.
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