Literature DB >> 21361700

Measuring contraction propagation and localizing pacemaker cells using high speed video microscopy.

Tony J Akl1, Zhanna V Nepiyushchikh, Anatoliy A Gashev, David C Zawieja, Gerard L Cot.   

Abstract

Previous studies have shown the ability of many lymphatic vessels to contract phasically to pump lymph. Every lymphangion can act like a heart with pacemaker sites that initiate the phasic contractions. The contractile wave propagates along the vessel to synchronize the contraction. However, determining the location of the pacemaker sites within these vessels has proven to be very difficult. A high speed video microscopy system with an automated algorithm to detect pacemaker location and calculate the propagation velocity, speed, duration, and frequency of the contractions is presented in this paper. Previous methods for determining the contractile wave propagation velocity manually were time consuming and subject to errors and potential bias. The presented algorithm is semiautomated giving objective results based on predefined criteria with the option of user intervention. The system was first tested on simulation images and then on images acquired from isolated microlymphatic mesenteric vessels. We recorded contraction propagation velocities around 10 mm/s with a shortening speed of 20.4 to 27.1 μm/s on average and a contraction frequency of 7.4 to 21.6 contractions/min. The simulation results showed that the algorithm has no systematic error when compared to manual tracking. The system was used to determine the pacemaker location with a precision of 28 μm when using a frame rate of 300 frames per second.

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Year:  2011        PMID: 21361700      PMCID: PMC3065345          DOI: 10.1117/1.3544512

Source DB:  PubMed          Journal:  J Biomed Opt        ISSN: 1083-3668            Impact factor:   3.170


  19 in total

Review 1.  Review article: lymphatic vessel pumping and inflammation--the role of spontaneous constrictions and underlying electrical pacemaker potentials.

Authors:  P Y von der Weid
Journal:  Aliment Pharmacol Ther       Date:  2001-08       Impact factor: 8.171

2.  Ca(2+)-activated Cl(-) current in sheep lymphatic smooth muscle.

Authors:  H M Toland; K D McCloskey; K D Thornbury; N G McHale; M A Hollywood
Journal:  Am J Physiol Cell Physiol       Date:  2000-11       Impact factor: 4.249

3.  [Experimental detection of autochthonous automatism of lymph vessels].

Authors:  H MISLIN
Journal:  Experientia       Date:  1961-01-15

4.  Regional variations of contractile activity in isolated rat lymphatics.

Authors:  Anatoliy A Gashev; Michael J Davis; Michael D Delp; David C Zawieja
Journal:  Microcirculation       Date:  2004-09       Impact factor: 2.628

5.  Image correlation algorithm for measuring lymphocyte velocity and diameter changes in contracting microlymphatics.

Authors:  J Brandon Dixon; Anatoliy A Gashev; David C Zawieja; James E Moore; Gerard L Coté
Journal:  Ann Biomed Eng       Date:  2006-12-07       Impact factor: 3.934

6.  Measuring microlymphatic flow using fast video microscopy.

Authors:  J Brandon Dixon; David C Zawieja; Anatoliy A Gashev; Gerard L Coté
Journal:  J Biomed Opt       Date:  2005 Nov-Dec       Impact factor: 3.170

7.  Vasa vasorum within the media of bovine mesenteric lymphatics.

Authors:  T Ohhashi; S Fukushima; T Azuma
Journal:  Proc Soc Exp Biol Med       Date:  1977-04

8.  Inhibition of the active lymph pump by flow in rat mesenteric lymphatics and thoracic duct.

Authors:  Anatoliy A Gashev; Michael J Davis; David C Zawieja
Journal:  J Physiol       Date:  2002-05-01       Impact factor: 5.182

9.  Characterization of norepinephrine-evoked inward currents in interstitial cells isolated from the rabbit urethra.

Authors:  G P Sergeant; K D Thornbury; N G McHale; M A Hollywood
Journal:  Am J Physiol Cell Physiol       Date:  2002-09       Impact factor: 4.249

10.  Spontaneous electrical activity in sheep mesenteric lymphatics.

Authors:  E A H Beckett; M A Hollywood; K D Thornbury; N G McHale
Journal:  Lymphat Res Biol       Date:  2007       Impact factor: 2.589

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  10 in total

1.  Effects of dynamic shear and transmural pressure on wall shear stress sensitivity in collecting lymphatic vessels.

Authors:  Jeffrey A Kornuta; Zhanna Nepiyushchikh; Olga Y Gasheva; Anish Mukherjee; David C Zawieja; J Brandon Dixon
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2015-09-02       Impact factor: 3.619

2.  Consequences of intravascular lymphatic valve properties: a study of contraction timing in a multi-lymphangion model.

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3.  Maximum shortening velocity of lymphatic muscle approaches that of striated muscle.

Authors:  Rongzhen Zhang; Anne I Taucer; Anatoliy A Gashev; Mariappan Muthuchamy; David C Zawieja; Michael J Davis
Journal:  Am J Physiol Heart Circ Physiol       Date:  2013-08-30       Impact factor: 4.733

4.  Lymph transport in rat mesenteric lymphatics experiencing edemagenic stress.

Authors:  Elaheh Rahbar; Tony Akl; Gerard L Coté; James E Moore; David C Zawieja
Journal:  Microcirculation       Date:  2014-07       Impact factor: 2.628

5.  Dual-channel in-situ optical imaging system for quantifying lipid uptake and lymphatic pump function.

Authors:  Timothy Kassis; Alison B Kohan; Michael J Weiler; Matthew E Nipper; Rachel Cornelius; Patrick Tso; J Brandon Dixon
Journal:  J Biomed Opt       Date:  2012-08       Impact factor: 3.170

6.  Engineering the Lymphatic System.

Authors:  Matthew E Nipper; J Brandon Dixon
Journal:  Cardiovasc Eng Technol       Date:  2011-07-28       Impact factor: 2.495

7.  Fluid pumping of peristaltic vessel fitted with elastic valves.

Authors:  Ki Tae Wolf; J Brandon Dixon; Alexander Alexeev
Journal:  J Fluid Mech       Date:  2021-05-11       Impact factor: 4.245

8.  High-speed microscopy for in vivo monitoring of lymph dynamics.

Authors:  Mustafa Sarimollaoglu; Amanda J Stolarz; Dmitry A Nedosekin; Brittney R Garner; Terry W Fletcher; Ekaterina I Galanzha; Nancy J Rusch; Vladimir P Zharov
Journal:  J Biophotonics       Date:  2018-01-11       Impact factor: 3.390

9.  Demonstration and Analysis of the Suction Effect for Pumping Lymph from Tissue Beds at Subatmospheric Pressure.

Authors:  Samira Jamalian; Mohammad Jafarnejad; Scott D Zawieja; Christopher D Bertram; Anatoliy A Gashev; David C Zawieja; Michael J Davis; James E Moore
Journal:  Sci Rep       Date:  2017-09-21       Impact factor: 4.379

10.  Effects of Elevated Downstream Pressure and the Role of Smooth Muscle Cell Coupling through Connexin45 on Lymphatic Pacemaking.

Authors:  Jorge A Castorena-Gonzalez; Min Li; Michael J Davis
Journal:  Biomolecules       Date:  2020-10-08
  10 in total

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