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Biomedical subjects

J O Archambeau

Publications and source records attributed to J O Archambeau.

8 recordsLinked to original sources

Role for proton beam irradiation in treatment of pediatric CNS malignancies.

The ability to vary the proton energy (depth of beam penetration) and modulate the dose distribution at the end of range permits delivery of an increased dose to the designated cancer-containing volume with a reduced dose to overlying normal brain tissue. The evolution of childhood CNS malignancy following therapy is reviewed to identify radiation response variables indicating where the proton dose distribution will improve the therapeutic ratio. The review documents that of the 1262 children expected to develop CNS malignancy in 1989, only 43% will survive 5 years. About 75% of those with medulloblastoma and over 90% with astrocytoma die from persistent (in-field) disease. When the patient has been treated with radiation, it is accepted that disease persistence indicates the cancer dose was insufficient. Potentially 536 children could show an improved incidence of local control and improved survival from an increased cancer dose available from proton irradiation. As the total dose and volume of brain irradiated is increased about 1800 cGy, brain dysfunction increases, producing a spectrum of functional and intellectual deficits which are age and volume related. About 900 irradiated patients would have fewer in-field histologic and functional changes if the dose to normal brain, or the volume of brain irradiated, is reduced by an improved dose distribution. A proton beam treatment plan, delivering a cancer dose of 7400 cGy, is simulated for a thalamic astrocytoma. The dose distribution of this plan is compared with an x-ray plan used to treat a patient, in which a dose of 5400 cGy was delivered to the astrocytoma. Comparative isodose distributions and dose-volume histograms indicate a decreased integral dose to normal brain and a decreased volume of normal brain irradiated, even as the cancer dose is boosted 2000 cGy with protons.

Brain Neoplasms

Carcinoma of the tonsillar region: potential for use of proton beam therapy.

An investigation of treatment results in tonsillar region carcinomas was conducted, with particular attention to local control and morbidity from current therapy. The purpose of the investigation was to identify problems that might be resolvable with a superior treatment modality. A search was made of the National Library of Medicine's MEDLINE database, covering local control, survival, and morbidity from current therapies; dose-response relationships; and prognostic indicators. Three-dimensional radiotherapy plans were developed for representative cases, comparing photon-beam plans with proton-beam plans. Locoregional control is a major problem, and morbidity from standard therapy is high. Comparative treatment plans reveal that proton beams can deliver higher doses to the tumor volume, with significantly reduced radiation to salivary glands and mandible, than can photon-beam irradiation. The absorption and distribution characteristics of protons provide the radiation oncologist with a superior tool for treating patients with tonsillar region carcinomas. The therapeutic advantage accrues from these superior characteristics, not from an inherent biologic advantage.

Humans

Hypopituitarism following pituitary irradiation for acromegaly.

Endocrine evaluation is reported in 8 acromegalic patients who received 5,500 rad to the pituitary from a linear accelerator. There was a mean decrease in hGH levels of 72%. Plasma testosterone levels were low in 1 of the 6 male patients prior to pituitary irradiation and were below normal in all male patients on the final evaluation (3.1 +/- 0.2 SD years postirradiation). Deficiency of TSH secretion developed in 2 patients following irradiation. This rather high incidence of postirradiation partial hypopituitarism was not anticipated, and is thought to be related to radiation necrosis of the normal pituitary tissue which surrounds the adenoma.

Acromegaly

Proton penetration and control in nonhomogeneous phantoms.

Accurate bolus is needed for extension of Bragg-peak therapy. Proton beam-stopping profiles in a lucite-styrofoam-tissue phantom and in a Rando phantom were recorded photographically. Air volumes caused the largest distortions. Lucite bolus was cut to achieve desired beam-stopping profiles. Verification of bolus effect in situ will be important to control beam penetration within 5 mm.

Models, Structural

Experimental tests of proton beam localization.

The depth of penetration of heavy charged-particle therapy beams is sensitive to the density of tissues traversed. Maximum depth of dose contours will vary appreciably as the beam passes through bone, muscle, lung, and air or gas. Calculations suggest that beam activation of the short-lived positron-emitting isotope 15O in vivo will permit localization of proton therapy beams with resonable detected-event density and dose. Preliminary tests of this method indicate that the beam can be located at depth with a typical dose of 15 rad, using a large field-of-view positron camera on-ling. This technique is also applicable to other heavy charged-particle beams, negative pions, and heavy ions.

Oxygen Radioisotopes