PubMed HealthSearch

PubMed · 9783266

Image processing in stereotactic planning: volume visualization and image registration.

Abstract

Radiation treatment planning (RTP), historically an image-intensive discipline and one of the first areas in which three-dimensional (3D) information from imaging was clinically applied, has become ever more critically dependent on accurate 3D identification of target and non-target organs with the advent of conformal radiation therapy, stereotactic radiotherapy, and radiosurgery. In addition to the interactive display of wire-frame or shaded surface models of anatomical objects, proposed radiation beams, and calculated dose distributions, use may also be made of direct visualization of relevant anatomy from image data. Although anatomical analysis of dose distributions is an essential component of radiation treatment design which requires geometric definition (i.e., segmentation) of all volumes of interest, geometric targeting with optimization based on 3D anatomical information is frequently performed as a separate step independent of dose calculations. For this early step in the planning process, and certainly for diagnostic purposes, visualization without explicit segmentation may be a useful additional capability. Additionally, we suggest that direct visualization of high contrast targets such as arteriovenous malformations (AVM) from computerized tomography (CT) or magnetic resonance (MR) angiography may serve as a tool for target volume delineation. Frequently, information from multiple modalities or multiple scans of the same modality is important in planning a given case. In such instances, image registration may prove useful to allow synthesis of information from multiple sources into a single consistent coordinate frame. Numerous image registration methods are available, each with characteristic strengths and weaknesses.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

C A Pelizzari. 1998. Image processing in stereotactic planning: volume visualization and image registration.. https://doi.org/10.1016/s0958-3947(98)00014-4

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Extrauterine pelvic arteriovenous malformation mimicking the clinical presentation of structural heart disease.

A case is reported of an extrauterine pelvic arteriovenous malformation involving branches of the internal iliac arteries. Cardiomegaly and a rough cardiac murmur were the clinical presentations mimicking a structural heart disease. A continuous bruit could only be detected by the diaphragm of the stethoscope applied firmly to the left lower abdomen. Multiple blood samplings from inferior vena cava, and iliac and femoral veins for determination of oxygen saturation may be necessary for suspected cases. However, selective arteriography remains the best method for diagnosing the presence, extent, and multiplicity of the lesions before surgery or percutaneous arterial embolization.

Arteriovenous Malformations

[Neurosurgery using the Gamma Knife].

Gamma Knife radiosurgery is a neurosurgical technique dedicated to treat a wide spectrum of intracranial pathologies. Radiosurgery is a method employing a single fraction of high dose ionizing radiation beams focused on the stereotactically defined intracranial target volume through the intact skull. This precise irradiation of intracranial volumes can necrotize the targeted cell mass--as in treatments of tumors and functional syndromes--or may induce certain biological effects in the target tissue-as in treatments of AVM's and epilepsy--without imposing a significant risk on the neighboring intact neural tissues. The clinical application of Gamma Knife includes a wide range of neurosurgical indications, such as treatments of arteriovenosus malformations, pituitary adenomas, craniopharyngiomas, meningiomas, vestibular schwannomas, gliomas, metastatic tumors, as well as functional neurosurgical syndromes, such as trigeminal neuralgia, extra-pyramidal dysfunctions, epilepsy, pain- and psychiatric syndromes. The clinical effect of irradiation is not immediate, it becomes detectable on follow up studies after a few months. The application of the technique is determined by the histological type, size and location of the pathology. Gamma Knife has evolved to become an established alternative to opened cranial surgery in certain cases with low morbidity and no mortality, offering a safe neurosurgical treatment for inoperable as well as operable lesions that carry significantly high surgical risk. In our review we present the technical and radiobiological principles, clinical indications, limitations and outcome results of this method. Our data are based on the practice and results of the Lars Leksell Center for Gamma Surgery, Department of Neurosurgery, University of Virginia, Charlottesville, Virginia, USA (Director: Ladislau Steiner dr.).

Arteriovenous Malformations

Isolation and culture of human neuromicrovascular endothelial cells for the study of angiogenesis in vitro.

Neovascularization in the adult central nervous system occurs as a response to several pathophysiological conditions such as ischemia, wound repair, or neoplasia. Endothelial cells from different blood vessel types, different organs, and different species are heterogeneous; therefore, the appropriate cell type should be used to study specific aspects of vascular pathology. We have developed a method to isolate human cerebral microvascular endothelial cells (CMECs) from small, freshly obtained specimens of normal brain adherent to human arteriovenous malformations (AVMs). The isolation procedure involves enzymatic digestions and gradient centrifugations, yielding over 95% pure primary cultures. Alternative isolation methods using magnetic beads, panning, or cloning were not superior with regard to cell purity or yield. CMECs were identified by their immunoreactivity for vWF, CD34, EN4, binding of Ulex europeus lectin, and uptake of DiI-Ac-LDL. They displayed ultrastructural features characteristic of blood-brain barrier endothelial cells and expressed GLUT-1. CMECs were subcultured; however, prolonged culture led to reduced culture purity. Vascular endothelial growth factor, basic fibroblast growth factor and hepatocyte growth factor/scatter factor stimulated the directional motility of CMECs, with dose-response profiles similar to human umbilical vein endothelial cells (HUVECs). In contrast, to stimulate proliferation, lower concentrations of growth factors tended to be necessary for CMECs than for the large vessel endothelial cells. CMECs formed capillary tube-like structures in an in vitro angiogenesis assay using matrigel. This study expands the spectrum of available tissue sources for the isolation of human neuromicrovascular endothelial cells, which are essential for the in vitro study of blood-brain barrier function and cerebral angiogenesis.

Arteriovenous Malformations