Showing posts with label secondary lymphedema. Show all posts
Showing posts with label secondary lymphedema. Show all posts

Tuesday, February 12, 2013

Omental flap for treatment of long standing lymphedema of the lower limb: can it end the suffering? Report of four cases with review of literatures.


Omental flap for treatment of long standing lymphoedema of the lower limb: can it end the suffering? Report of four cases with review of literatures.


Feb 2013

Source

Department of Surgery, Ninava Medical College, Mosul University, Mosul, Iraq.

Abstract

We report our experience of four cases of long-standing unilateral, secondary lymphoedema of the lower limb, for which conservative treatment has failed, that were treated in our centre using pedicled omental flap. The four patients were followed for a period of 1 year after the procedures and frequent measurements of the circumference of the affected limb revealed a reduction in the circumference ranging between 50% in the first patient to 75% in the fourth patient together with an excellent functional improvement in terms of resuming walking, daily activities, sports and work. We think that pedicled omental flap is an important, relatively easy and safe option that deserves consideration in refractory cases of lymphoedema of the lower limb.

***Please Note: This is for informational purposes only.  Not to be construed as an endorsement of this procedure. Personally, I feel much more research is imperative including long term and very long term results and potential complications. Pat***

Thursday, September 20, 2012

Technical note: MRI lymphangiography of the lower limb in secondary lymphedema


Technical note: MRI lymphangiography of the lower limb in secondary lymphedema.


2011


Source

Department of Radiology, BGS Global Hospital, Bangalore, India.

Abstract


We would like to describe a case of MRI lymphangiography of the left leg, performed by subcutaneous injection of gadopentetate in the foot, followed by serial acquisitions of images, in a 52-year-old female, who presented to us with progressive leg swelling following total hysterectomy and radiation therapy. Successful demonstration of lymphatic channels, along with faint visualization of the venous system, was achieved. This technique allows excellent visualization of lymphatic channels.
Introduction
The credit for the first description of lymphatic channels goes to the Italian anatomist Gasparo Asellius who saw these milky white channels in a dog. However, Kinmonth et al. were the first to demonstrate lymphatics after injecting a blue dye subcutaneously. Since then, there have been various advances in the imaging techniques for identifying and visualizing the lymphatic system and its diseases. Techniques described in the past include lymphangiography and lymphoscintigraphyWe describe an MRI lymphangiography (MRL) technique in a case of secondary lymphedema following surgery and radiation for endometrial carcinoma.
Case Report
A 52-year-old lady presented to us with progressive, huge, swelling of her left leg of 5 year’s duration and swelling of her right leg for the past 1 year. She had been diagnosed to have endometrial carcinoma in 2002 and had undergone radical hysterectomy and pelvic lymph node dissection, followed by 35 fractions of radiotherapy. She had been asymptomatic till 2005.
Doppler study for both legs showed a normal venous system. MRI angiography of both legs showed a normal arterial system. A CT scan of the abdomen done 7 months back had shown no tumor recurrence or metastases.
MRL of the left leg was performed on a 1.5-T (Wipro GE, Milwaukee, WI, USA) machine after obtaining informed consent. Following painting and draping of her left foot, 0.5 ml of 2% lignocaine was injected subcutaneously into the interdigital web spaces and between the first and second proximal metatarsal space with a 24-G needle. 
Following this, 1 ml of meglumine gadopentetate (Magnevist, Bayer Schering Pharma, Berlin, Germany) was injected into each of these five sites at the recommended dose (for intravenous use) of 0.1 mmol/kg body weight. The injected sites were massaged for 1 min. Imaging was performed using a 3D spoiled gradient-echo sequence (LAVA-XV) with the following parameters (TR-4, TE-1.9, TI-7, bandwidth 62.5 kHz, matrix 320 × 192, NEX-0.73, thickness 4 mm with 0 interslice gap, FOV 48 × 43.2, and scan time of 28 s). The scan was performed with an eight-channel body array coil. The acquisition was done at 5, 15, 25, 35, 45, and 55 mi. Dilated lymphatic channels were first visualized at 5 min followed by 15 min, 35 min  and by 55 min, lymphatics up to the groin could be seen. 
There was excellent visualization of multiple lymphatic channels on the superomedial aspect of the leg and, in addition, there was also faint visualization of the veins. Dermal backflow was noted in the medial aspect of the lower leg at the ulcer site. No dilated lymphatics were noted in the lateral and posterior aspects of the leg. The patient was kept on antibiotics after the procedure. 
There was no pain at the puncture site and no other complications were noted.
Discussion
The incidence of symptomatic lymphedema in a single lower extremity after surgery for uterine corpus malignancy has been found to be 69%, while bilateral lymphedema occurs in 31% of cases. Lymphedema develops after a median time of 5.3 months after the initial surgery. This development of lower extremity lymphedema is associated with the removal of 10 or more lymph nodes during surgery.
Lymphovenous anastomosis is often performed to treat lymphedema. For this, prior visualisation of the lymphatic channels is important. The more the number of lymphovenous anastomoses performed, the better are the results.
Initially, invasive techniques of the exploration of lymphatic vessels and injection of oil-based dyes were used for the assessment of the lymphatic drainage, but these are no longer used due to technical difficulties, the nonavailability of the contrast medium, and associated risks like pulmonary embolism. Lymphoscintigraphy is another technique that detects peripheral lymphatics and can yield quantitative flow information but has limited use in the evaluation of mild lymphedema. It suffers from poor spatial and temporal resolution.
With the development of new MRI sequences, it is now feasible to demonstrate lymphatic channels with MRL and thus help the surgeons plan adequate surgery. This can be achieved with or without the use of contrast. Laor et al. have demonstrated lymphatic channels noninvasively in children and infants with lymphatic pathologies, but in a few cases they were unable to suppress signals from veins. Excellent visualization of dilated lymphatic channels is possible with intracutaneous injection of gadodiamide or gadolinium-DTPA, without much venous contamination.
We have modified the technique by using a subcutaneous injection of 1 ml of meglumine gadopentetate in each interdigital web space as well as between the first and second metatarsals after first injecting the sites with 0.5 ml of 2% lignocaine. We were able to clearly demonstrate the lymphatic channels and also faintly visualize the venous system.




Diagnosis and treatment of venous lymphedema.


Diagnosis and treatment of venous lymphedema.


Jan 2012

Source

The Rane Center, Flowood, MS. USA. rajumd@earthlink.net

Abstract


BACKGROUND:

Chronic venous disease (CVD) is a common cause of secondary lymphedema. Venous lymphedema is sometimes misdiagnosed as primary lymphedema and does not receive optimal treatment. We have routinely used intravascular ultrasound (IVUS) imaging in all cases of limb swelling. The aim of this study is to show that (1) routine use of IVUS can detect venous obstruction missed by traditional venous testing, and (2) iliac-caval venous stenting can yield satisfactory clinical relief and can sometimes reverse abnormal lymphangiographic findings.

METHODS:

The study comprised CVD patients who underwent iliac vein stenting. Lymphangiography was abnormal in 72 of 443 CEAP C(3) limbs, with leg swelling as the primary complaint (abnormal lymphangiography group). Clinical features and stent outcome were compared with a control group of 205 of 443 with normal lymphangiography (normal lymphangiographic group).

RESULTS:

Clinical features were a poor guide to the diagnosis of lymphedema. Isotope lymphangiography was not helpful in differentiating primary from secondary lymphedema. Venography had 61% sensitivity to the diagnosis of venous obstruction. IVUS had a sensitivity of 88% for significant (50% area stenosis) venous obstruction. At 40 months, cumulative secondary stent patency was similar for the abnormal (100%) and normal lymphangiographic (95%) groups. Swelling improved significantly after stent placement in the abnormal lymphangiographic group (mean [standard deviation] swelling grade improvement 0.8 ± 1.1) but was less  than in the control group

Complete swelling relief was 16% and 44% and partial improvement  was 45% and 66%  in the abnormal and normal lymphangiographic groups, respectively. 

Associated pain was present in 50% and 36% of the swollen limbs in the abnormal and normal lymphangiographic groups. Pain relief at 40 months was 87% and 83%, respectively (P = .3), with 65% and 71%, experiencing complete pain relief. Quality of life criteria improved after stent placement in both groups but to a better extent in the normal lymphangiographic group. Abnormal lymphangiography improved or normalized in 9 of 36 (25%) of those tested after stent correction.

CONCLUSIONS:

Prevailing practice patterns and diagnostic deficiencies probably result in the misdiagnosis of many cases of venous lymphedema as "primary" lymphedema. IVUS is recommended to rule out venous obstruction as the associated or initiating cause of lymphedema. Iliac venous stenting to correct the obstruction has excellent long-term patency and good clinical outcome, although results are not as good as in those with normal lymphatic function.

Friday, February 24, 2012

High resolution unenhanced computed tomography in patients with swollen legs.

An older abstract from 2002, laying the basic info foundation for understanding CT scans of leg lymphedema. Also mentioned in the article are DVTs and lipedema, and the use of the ultrasound.


The study:


High resolution unenhanced computed tomography in patients with swollen legs.


Sept 2002

Source

Service d'Imagerie Medicale, Saint Eloi Hospital, Montpellier, France. e-monnin@chu-montpellier.fr

Abstract


PURPOSE:

To evaluate the accuracy of computed tomography (CT) scan imaging in distinguishing lymphedema from deep venous thrombosis (DVT) and lipodystrophy (lipedema) in patients with swollen legs.


MATERIAL AND METHODS:

CT scans of the lower limbs were performed in 55 patients with 76 swollen legs (44 lymphedemas, 12 DVT and 20 lipedemas). Thirty-four normal contralateral legs were also similarly evaluated. Primarylymphedema was verified by lymphography or lymphoscintigraphy, whereas secondary lymphedema was documented by a typical clinical history. DVT was established by ultrasound Doppler imaging. The diagnosis of lipedema was made with bilateral swollen legs where lymphoscintigraphy and Doppler examination were both unremarkable. Qualitative CT analysis was based on skin thickening, subcutaneous edema accumulation with a honeycombed pattern, and muscle compartment enlargement.


RESULTS:

Sensitivity and specificity of CT scan for the diagnosis of lymphedema was 93 and 100%, respectively; for lipedema it was 95 and 100%, respectively; andfor DVT it was 91 and 99%, respectively. Skin thickening was found in 42 lymphedemas (95%), in 9 DVT (75%), and in 2 lipedemas (16%). Subcutaneous edema accumulation was demonstrated in 42 legs (95%) with lymphedema and in 5 (42%) with DVT but in none with lipedema. A honeycombed pattern was present only in lymphedema (18 legs or 41%); muscle enlargement was present in all patients with DVT, in no patient with lipedema, and in 4 (9%) with lymphedema.


CONCLUSION:

Edema accumulation is readily demonstrated with plain CT scan and is not present in lipedema. Specific CT features of the subcutaneous fat and muscle compartments allow accurate differentiation between lymphedema and DVT.


PubMed

Lymphedema of the lower limbs: CT staging

Another older article from 2002, that discusses CT staging of leg (lower limb) lymphedema.

Doctors have long maintained that these radiography scans can be valuable in assesing the stages of lymphedema and in understand the physiology of a lymphedematous leg. However, this remain tremendously difficult for several reasons.

First, not many doctors appear to be well trained to interpret these scans in as much as lymphedema is concerned.

Secondly, even if a doctor was able to interpret a CT scan, there really is no specific diagnostic criteria for such a diagnoses or staging.

Notice too, in the study, the comments regarding the difference between the description of a primary lymphedema thigh versus a secondary one.

The abstract follows:

Lymphedema of the lower limbs: CT staging].


[Article in French]


Source

Hôpital Saint-Michel, 33, rue Olivier-de-Serres, 75015 Paris, France. martine.marotel@hopital-saint-michel.org

Abstract


Routinely performed, CT is useful and reliable for staging lower limb lymphedema. We describe methods we utilized. We found in frequency order: skin thickening, subcutaneous tissues area increase in regard the safe limb, perimuscular aponevrosis thickening, fat infiltration: lines parallel to the skin, edematous areas along perimuscular aponevrosis, lines perpendicular to the skin. The lowest fat density is increased on the pathologic side. Subfascial compartment is slightly fattened. We found huge differences between primary and secondary lymphedema for the thigh. Same images may be generated by old or young lymphedema. Rarely useful for positive diagnosis, CT is indispensable for secondarylymphedema staging (initial staging or after a recent increase). It seems us indispensable for any pretherapeutic staging (whole objectively disorders, exact upper limit, infraclinic bilaterality).


PubMed

Computerized tomography of 150 cases of lymphedema of the leg

This is a very old abstract from 1998. What was fascinating to me personally, is the CT description of the leg tissue with lymphedema. It reminded me of the ones I have had on both legs.


In the early 1970's, I had three Thompsons procedures done on my left leg, and none done on the right. There is a noticeable difference internally for the legs. Strange too was the fact that after a week in the hospital last year, it was the left leg that experienced the greatest decrease in swelling - specifically due to the fact that according to the CT, it has a much smaller amount of subcutaneous tissue then the left.

Does that make the surgery worthwhile? Hardly, the complications, including lymphoma still make it a terrible choice for lymphedema treatment. It is also the only leg that has experienced cellulitis.

The abstract follows:

Computerized tomography of 150 cases of lymphedema of the leg


Nov 1998

[Article in French]

Source

Hôpital Saint-Michel, Paris, France.

Abstract

The aim of this work was to evaluate the usefulness of CT imaging to stage lower limb lymphedemas. Between 1992 and 1997, we studied 150 cases of lymphedema, half idiopathic and half secondary. Methods used are described. In decreasing order of frequency, we found: skin thickening, increased subcutaneous tissue surface area compared with the healthy limb, thickening of the perimuscular aponevrosis, fat infiltration: lines parallel to the skin (parallel), edematous areas along the perimuscular aponevrosis, lines perpendicular to the skin (perpendicular). The lowest fat density was increased on the diseased side. The subfascial tissue showed some fat accumulation. These results were compared with findings reported in the literature. There were very major differences between idiopathic lymphedema and secondary lymphedema of the thigh. Similar images were generally generated by new and long-standing lymphedema. Rarely useful for positive diagnosis, CT is indispensable for establishing stage initially or after recent increase and, in our opinion, is essential for pretherapeutic assessment. The CT-scan gives objective evidence of overall disorders, the exact upper limit of the lymphedema, and sometimes reveals infraclinical bilateral involvement.


Full text arricle: EM/Consulte


Thursday, June 11, 2009

Anatomy of the subcutaneous lymph vascular network of the human leg in relation to the great saphenous vein.

Anatomy of the subcutaneous lymph vascular network of the human leg in relation to the great saphenous vein.

Anat Rec (Hoboken). 2009

Schacht V, Luedemann W, Abels C, Berens von Rautenfeld D.
Department of Dermatology, University Medical Center Freiburg, Freiburg, Germany.
vivien.schacht@uniklinik-freiburg.de

The anatomical relationship between lymphatic collectors and veins is of clinical importance for preventing lymphedema secondary to lymphatic collector injury during surgical procedures. To identify areas at risk during surgical interventions, we performed an anatomical study of human legs. The lymphatic collectors of 42 legs of human cadavers were injected with Berlin Blue solution or contrast medium. After fixation, the collectors were dissected and their distances from the great saphenous vein were determined. We found that the lymphatic collectors on the dorsum of the foot ran in close parallel with the corium, whereas in the groin a greater number of lymphatic collectors clustered around the great saphenous vein. The ventromedial bundle that drains into the superficial inguinal nodes included 5-20 lymphatic collectors. The average width of the ventromedial bundle varied between 116 mm at the middle of the lower leg and 32 mm at the groin. Our study cannot confirm the previous observation of a bottleneck of the ventromedial bundle occurring at the knee, but does support the finding of an elongated bottleneck at the thigh and groin draining into the superficial inguinal lymph nodes. In addition, the idea of one sentinel lymph node for a specific region of the leg is not supported by these data. These observations will help surgeons to plan incisions and dissections with respect to lymphatic collectors, thereby minimizing damage to them and reducing complications resulting from unnecessary lymphatic excisions. Anat Rec, 2009.

PubMed