Literature DB >> 27309032

Constitutively Enhanced Lymphatic Pumping in the Upper Limbs of Women Who Later Develop Breast Cancer-Related Lymphedema.

Viviana Cintolesi1, Anthony W B Stanton1, Salena K Bains2, Emma Cousins1, A Michael Peters3, Arnie D Purushotham2, J Rodney Levick1, Peter S Mortimer1,4,5.   

Abstract

BACKGROUND: It has previously been shown that the lymph drainage rate in both upper limbs is greater in women destined to develop breast cancer-related lymphedema (BCRL) than in those who do not develop BCRL, indicating a constitutive predisposition. We explored constitutive differences further by measuring the maximum lymphatic pump pressure (Ppump) and the rate of (99m)Tc-Nanocoll transport generated by the contractile upper limb lymphatics before and after breast cancer surgery in a group of women who were followed for 2 years to determine their eventual BCRL or non-BCRL status. METHODS AND
RESULTS: Ppump and tracer transport rate were measured by lymphatic congestion lymphoscintigraphy in the ipsilateral upper limb in 26 women pre- and post-breast cancer surgery. BCRL occurred in 10/26 (38.5%) cases. Ppump in the women who later developed BCRL (40.0 ± 8.2 mmHg) was 1.7-fold higher than in those who did not develop BCRL (23.1 ± 10.8 mmHg, p = 0.001). Moreover, the rate of lymph tracer transport into the forearm was 2.2-fold greater in the women who later developed BCRL (p = 0.052). Surgery did not significantly reduce Ppump measured 21 weeks postsurgery, but impaired forearm tracer transport in pre-BCRL women by 58% (p = 0.047), although not in those who did not develop BCRL.
CONCLUSIONS: Women destined to develop BCRL have higher pumping pressures and lymph transport, indicating harder-working lymphatics before cancer treatment. Axillary lymphatic damage from surgery appears to compromise lymph drainage in those women constitutively predisposed to higher lymphatic pressures and lymph transport.

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Year:  2016        PMID: 27309032     DOI: 10.1089/lrb.2016.0005

Source DB:  PubMed          Journal:  Lymphat Res Biol        ISSN: 1539-6851            Impact factor:   2.589


  10 in total

1.  The relationship between lymphangion chain length and maximum pressure generation established through in vivo imaging and computational modeling.

Authors:  Mohammad S Razavi; Tyler S Nelson; Zhanna Nepiyushchikh; Rudolph L Gleason; J Brandon Dixon
Journal:  Am J Physiol Heart Circ Physiol       Date:  2017-08-04       Impact factor: 4.733

2.  T helper 2 differentiation is necessary for development of lymphedema.

Authors:  Catherine L Ly; Gabriela D García Nores; Raghu P Kataru; Babak J Mehrara
Journal:  Transl Res       Date:  2018-12-21       Impact factor: 7.012

3.  Baseline Lymphatic Dysfunction Amplifies the Negative Effects of Lymphatic Injury.

Authors:  Geoffrey E Hespe; Catherine L Ly; Raghu P Kataru; Babak J Mehrara
Journal:  Plast Reconstr Surg       Date:  2019-01       Impact factor: 4.730

4.  Lymphatic remodelling in response to lymphatic injury in the hind limbs of sheep.

Authors:  Tyler S Nelson; Zhanna Nepiyushchikh; Joshua S T Hooks; Mohammad S Razavi; Tristan Lewis; Cristina C Clement; Merrilee Thoresen; Matthew T Cribb; Mindy K Ross; Rudolph L Gleason; Laura Santambrogio; John F Peroni; J Brandon Dixon
Journal:  Nat Biomed Eng       Date:  2019-12-23       Impact factor: 25.671

Review 5.  Lymphatic Vessel Network Structure and Physiology.

Authors:  Jerome W Breslin; Ying Yang; Joshua P Scallan; Richard S Sweat; Shaquria P Adderley; Walter L Murfee
Journal:  Compr Physiol       Date:  2018-12-13       Impact factor: 9.090

Review 6.  New and Emerging Treatments for Lymphedema.

Authors:  Mark V Schaverien; Melissa B Aldrich
Journal:  Semin Plast Surg       Date:  2018-04-09       Impact factor: 2.314

7.  Long term effects of manual lymphatic drainage and active exercises on physical morbidities, lymphoscintigraphy parameters and lymphedema formation in patients operated due to breast cancer: A clinical trial.

Authors:  Mariana Maia Freire de Oliveira; Maria Salete Costa Gurgel; Bárbara Juarez Amorim; Celso Dario Ramos; Sophie Derchain; Natachie Furlan-Santos; César Cabello Dos Santos; Luís Otávio Sarian
Journal:  PLoS One       Date:  2018-01-05       Impact factor: 3.240

8.  A novel mouse tail lymphedema model for observing lymphatic pump failure during lymphedema development.

Authors:  Michael J Weiler; Matthew T Cribb; Zhanna Nepiyushchikh; Tyler S Nelson; J Brandon Dixon
Journal:  Sci Rep       Date:  2019-07-18       Impact factor: 4.379

Review 9.  Lymphatic Valves and Lymph Flow in Cancer-Related Lymphedema.

Authors:  Drishya Iyer; Melanie Jannaway; Ying Yang; Joshua P Scallan
Journal:  Cancers (Basel)       Date:  2020-08-15       Impact factor: 6.639

10.  The impact of monitoring techniques on progression to chronic breast cancer-related lymphedema: a meta-analysis comparing bioimpedance spectroscopy versus circumferential measurements.

Authors:  Chirag Shah; April Zambelli-Weiner; Nicole Delgado; Ashley Sier; Robert Bauserman; Jerrod Nelms
Journal:  Breast Cancer Res Treat       Date:  2020-11-27       Impact factor: 4.872

  10 in total

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