The architecture of the mouse popliteal lymph nodes differs from that shown in conventional diagrams. The cortical lymphoid tissue, rather than forming a continuous outer layer, is organised into one or two hemispherical aggregates which project towards the hilus. These aggregates are surrounded by medullary tissue which thus extends to large areas of the surface of the node. The vascular distribution in the lymphoid aggregates is relatively sparse and contrasts with the dense meshwork of capillaries and venules around them. It also contrasts with the high vascularity of medullary tissue. Arterial vessels, especially those of larger calibre, are predominantly seen in the hilar area of the node suggesting that there is extensive branching as the artery enters the node. Capillaries associated with the lymphoid aggregates are usually lined by continuous endothelium, while those in the medulla are generally of the fenestrated type. The microcirculation has an extensive venous capacity and many venous segments are high endothelium venules whose walls are permeated by lymphocytes. Each node receives one or two afferent lymphatic vessels and is drained by up to four or five efferent lymphatic vessels. In approximately half the nodes examined, there were extranodal communications between afferent and efferent lymphatic vessels allowing some lymph to bypass the node.
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J Vasc Interv Radiol
January 2025
Department of Radiology, Hospital of the University of Pennsylvania, 3400 Spruce St, Philadelphia, PA 19104, United States.
Purpose: To evaluate the safety and efficacy of lymphatic embolization for primary genital lymphorrhea.
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Int J Surg Case Rep
January 2025
Oral and Maxillofacial Surgery Department, Faculty of Dentistry, Tishreen University, Lattakia, Syria.
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View Article and Find Full Text PDFDokl Biochem Biophys
January 2025
Laboratory of Microangiopathic Mechanisms of Atherogenesis, St. Petersburg State University, St. Petersburg, Russia.
The aim of this study was to describe the features of myocardial lymph flow using a new combined method of visualization of the lymphatic system. The study was performed on pig hearts harvested from a local slaughterhouse. The original dye, consisting of lipid-soluble chlorophyll and lipiodol, was injected stepwise into the lymphatic vessels.
View Article and Find Full Text PDFAnnu Rev Biomed Eng
January 2025
1Joint Department of Biomedical Engineering, University of North Carolina at Chapel Hill and North Carolina State University, Chapel Hill and Raleigh, North Carolina, USA;
The lymphatic vasculature plays critical roles in maintaining fluid homeostasis, transporting lipid, and facilitating immune surveillance. A growing body of work has identified lymphatic dysfunction as contributing to the severity of myriad diseases and to systemic inflammation, as well as modulating drug responses. Here, we review efforts to reconstruct lymphatic vessels in vitro toward establishing humanized, functional models to advance understanding of lymphatic biology and pathophysiology.
View Article and Find Full Text PDFAdv Healthc Mater
January 2025
Nitte (Deemed to be University), Department of Bio & Nano Technology, Nitte University Centre for Science Education and Research, Mangalore, Karnataka, 575018, India.
Therapeutic strategy for efficiently targeting cancer cells needs an in-depth understanding of the cellular and molecular interplay in the tumor microenvironment (TME). TME comprises heterogeneous cells clustered together to translate tumor initiation, migration, and proliferation. The TME mainly comprises proliferating tumor cells, stromal cells, blood vessels, lymphatic vessels, cancer-associated fibroblasts (CAFs), extracellular matrix (ECM), and cancer stem cells (CSC).
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