B413110
Fluoroscopy Splenic Arteries to Intraoperative with Laser, Low Osmolar Approach
Procedural Specifications
| Clinical Axis | Detail Definition |
|---|---|
| Section | B Imaging |
| Body System | 4 Lower Arteries |
| Operation | 1 Fluoroscopy |
| Body Part | 3 Splenic Arteries |
| Approach | 1 Low Osmolar |
| Device | 1 Laser |
| Qualifier | 0 Intraoperative |
Operation Definition
Single plane or bi-plane real time display of an image developed from the capture of external ionizing radiation on a fluorescent screen. The image may also be stored by either digital or analog means
Procedure Overview
This family covers fluoroscopic imaging of arteries below the diaphragm, such as the aorta, renal, iliac, and femoral arteries, where a continuous stream of low-dose X-rays is displayed in real time on a screen while contrast dye moves through the vessel. Because the image updates live, physicians can watch blood flow, catheter movement, and contrast filling patterns as they happen rather than reviewing a single frozen frame.
This type of imaging is central to catheter-based angiography, where a specialist threads a catheter into an artery and injects dye to map blockages, aneurysms, or abnormal connections before deciding on treatments such as angioplasty or stent placement. It is valued for showing dynamic flow characteristics that a static image cannot capture.
Anatomy & Axis Detail
Splenic Arteries
The splenic arteries branch from the celiac trunk and follow a characteristically tortuous course toward the spleen, giving off pancreatic and short gastric branches along the way. Fluoroscopic evaluation is used to assess this tortuosity, identify splenic artery aneurysms, which carry a notable rupture risk, and detect traumatic injury or active bleeding following abdominal trauma. The winding course of these vessels makes real-time fluoroscopic guidance especially useful for advancing a catheter selectively into the splenic circulation, since static imaging alone may not adequately capture the vessel's path or a bleeding point that varies with the cardiac and respiratory cycle. This study is also performed to plan or guide splenic artery embolization, so findings should describe vessel course, any aneurysm, and sites of contrast extravasation if present.
Contrast: Low Osmolar
Low Osmolar denotes use of a low-osmolar iodinated contrast agent during an imaging study, the class most commonly used in modern radiographic and CT imaging because it better approximates the osmolality of blood and carries a lower risk of reaction than High Osmolar media. This value distinguishes studies performed with this now-standard contrast type from those using older high-osmolar agents or no contrast at all.
Qualifier: Laser
Laser as an imaging qualifier indicates that laser-based technology was integral to acquiring the image, as seen in certain ophthalmic or optical imaging modalities. It reflects the light source or scanning mechanism rather than a chemical contrast agent. It is distinguished from Intravascular Optical Coherence, which uses laser light specifically within a vessel via catheter-based optical coherence tomography.
Qualifier: Intraoperative
This qualifier indicates that an imaging study is performed intraoperatively, meaning the images are obtained during an ongoing surgical procedure rather than as a separate diagnostic encounter. It distinguishes real-time surgical imaging from routine preoperative or postoperative studies, which carry the None qualifier instead.
Coding & Documentation
Coders assign this family when the documentation describes real-time fluoroscopic visualization of a lower artery, whether the images are stored digitally or on film, and should confirm the specific vessel or vascular territory named in the report. Since fluoroscopy frequently accompanies interventional procedures like angioplasty, a common error is separately coding the diagnostic fluoroscopic imaging when it was performed purely to guide a therapeutic procedure already captured elsewhere, rather than as a standalone diagnostic study. Contrast use and the exact artery or arterial segment should always be verified against the physician's description.
Commonly Confused With
Fluoroscopy is most often confused with plain radiography of the same arteries, and the deciding factor is whether the imaging was continuous and real-time or a single static exposure. It also differs from CT angiography, which assembles a three-dimensional reconstruction from many separate exposures rather than showing live flow, and from ultrasonography, which relies on sound waves and is typically used for a different clinical question, such as measuring flow velocity rather than mapping detailed anatomy for intervention planning.
