A plexus of lymphatic vessels guides interstitial fluid, passenger leukocytes, and tumor cells toward regional lymph nodes. Microvascular endothelial cells (ECs) of lymph channels (LECs) are difficult to distinguish from those of blood vessels (BECs) because both express a similar set of markers, such as CD31, CD34, podocalyxin, von Willebrand factor (vWF), etc. Analysis of the specific properties of LECs was hampered so far by lack of tools to isolate LECs. Recently, the 38-kD mucoprotein podoplanin was found to be expressed by microvascular LECs but not BECs in vivo. Here we isolated for the first time podoplanin+ LECs and podoplanin− BECs from dermal cell suspensions by multicolor flow cytometry. Both EC types were propagated and stably expressed VE-cadherin, CD31, and vWF. Molecules selectively displayed by LECs in vivo, i.e., podoplanin, the hyaluronate receptor LYVE-1, and the vascular endothelial cell growth factor (VEGF)-C receptor, fms-like tyrosine kinase 4 (Flt-4)/VEGFR-3, were strongly expressed by expanded LECs, but not BECs. Conversely, BECs but not LECs expressed VEGF-C. LECs as well as BECs formed junctional contacts with similar molecular composition and ultrastructural features. Nevertheless, the two EC types assembled in vitro in vascular tubes in a strictly homotypic fashion. This EC specialization extends to the secretion of biologically relevant chemotactic factors: LECs, but not BECs, constitutively secrete the CC chemokine receptor (CCR)7 ligand secondary lymphoid tissue chemokine (SLC)/CCL21 at their basal side, while both subsets, upon activation, release macrophage inflammatory protein (MIP)-3α/CCL20 apically. These results demonstrate that LECs and BECs constitute stable and specialized EC lineages equipped with the potential to navigate leukocytes and, perhaps also, tumor cells into and out of the tissues.
The microvasculature of the blood and lymphatic systems form anatomically distinct, nonanastomozing networks
In this study we capitalized on our recent observation that the 38-kD transmembrane mucoprotein podoplanin is expressed by LECs in various human tissues
Primary nonconjugated mouse mAbs used were anti–VE-cadherin (Immunotech), -CD31 (Ancell), -CD44 (Bender MedSystems), -CD45 (Becton Dickinson), and Pal-E (Harlan Sera-Lab). FITC-conjugated Abs included anti-CD34 (Becton Dickinson), sheep anti-von Willebrand factor (vWF; Serotec), goat anti–mouse F(ab′)2 (Jackson ImmunoResearch Laboratories), and goat anti–rabbit F(ab′)2 (Immunotech). PE- and RPE-Cy5–conjugated mAbs were anti-CD34 (Becton Dickinson) and anti-CD45 (Serotec). Biotinylated reagents were anti-CD31 (Ancell) and
Dermatomed 0.8-mm split-thickness skin was obtained from adult healthy individuals undergoing elective surgery (breast reduction and abdominoplasty).
The procedures below are for the isolation of podoplanin+ and podoplanin− microvascular ECs from freshly prepared dermal cell suspensions (approach A)
Freshly isolated dermal cell suspensions were cultured in EC growth medium MV until confluent monolayers were formed. Loosely attached cells were discarded and adherent cells harvested by trypsinization as described above.
Plastic-adherent EC subsets were washed twice in ice-cold PBS/2 mM EDTA/0.5% BSA and then detached from the plates by gentle pipetting. Cells obtained were incubated with the indicated primary Abs or with appropriate control Abs for 60 min on ice. Primary Abs were detected by incubation with goat anti–mouse F(ab′)2 FITC or goat anti–rabbit F(ab′)2 FITC (2 μg/ml each). To reveal cytoplasmic vWF expression, cells were fixed and permeabilized before the immunostaining procedure, using a kit according to the manufacturer's instructions (Fix&Perm; An der Grub). Cellular fluorescence was analyzed on a FACScan™ flow cytometer.
5-μm cryosections were cut from skin specimens of healthy human donors, mounted onto glass slides, air-dried, and rehydrated in HBSS. ECs were cultured on fibronectin-coated LabTek chamber glass slides (Nunc). Cells were fixed in 4% paraformaldehyde (PFA)/PBS for 20 min. Slide-bound ECs or skin sections were incubated for 30 min in blocking solution (5 mM CaCl2, 1% BSA, and 10 μg/ml goat IgG in HBSS) before their simultaneous exposure to rabbit anti-podoplanin and the indicated mAbs overnight. Binding of the primary polyclonal and monoclonal Abs was revealed by subsequent incubation with goat anti–mouse TRITC and goat anti–rabbit FITC (5 μg/ml each). Samples were mounted in Vectorshield medium (Vector Laboratories) and were analyzed by laser scanning microscopy (LSM 410; ZEISS).
UEA I+ ECs were isolated as described above and expanded through five culture passages. ECs were harvested, seeded onto fibronectin-coated glass coverslips, and cultured for the indicated time periods. Then, coverslip-bound ECs were fixed in 4% PFA/PBS for 6 h at 20°C, and processed for preembedding anti-podoplanin immunogold labeling, as described
ECs were grown to 80% confluence, lysed in reducing SDS sample buffer, and proteins were electrophoresed by 5–15% gradient or 6% straight SDS-PAGE and transferred onto nitrocellulose membranes (Bio-Rad Laboratories). Membranes were cut and strips were incubated with the following Abs: rabbit anti-podoplanin (final dilution 1:1,000), rabbit fms-like tyrosine kinase 4 (Flt-4) (C-terminus-reactive), -KDR, -Flt-1, -Tie-1, -Tie-2 (0.5 μg/ml each; Santa Cruz Laboratories, Inc.), or mouse anti-CD31 (0.5 μg/ml). Strips were washed, and binding of primary Abs was revealed as described previously
Total RNA was extracted using TriReagent (Molecular Research Center) according to the manufacturer's instructions. 20 μg of RNA were separated on 1% formaldehyde-agarose gels and transferred onto Zeta Probe nylon membranes (Bio-Rad Laboratories), and hybridized to the following 32P-labeled cDNA fragments: podoplanin (nucleotides [nt] 136–653), LYVE-1 (nt 91–1054), Flt-4 (nt 554–1340), CD31 (nt 605–1397), vascular endothelial cell growth factor (VEGF)-C (nt 353–849), and β-actin (CLONTECH Laboratories, Inc.). Hybridization was performed at 65°C for 18 h. Then, membranes were washed twice in 5% SDS/20 mM Na2HPO4, pH 7.2, at 65°C for 30 min followed by two washes in 1% SDS/20 mM Na2HPO4, pH 7.2, at 60°C for 10 min, and exposed for 1 to 3 d to X-ray films.
Plastic-adherent ECs were labeled with 5(and 6)-([{4 chloromethyl}benzoyl] amino)tetramethylrhodamino (CMTMR) or with 5-chloromethylfluorescein diacetate (CMFDA) fluorescent cell trackers (100 nM; both from Molecular Probes) in HBSS for 15 min at 37°C. Free label was removed, cells were cultured for 12 h in EC growth medium, and detached from the plate by trypsin/EDTA. 24-well culture dishes were coated with 0.5 ml Matrigel (both from Becton Dickinson) per well on ice and gels were allowed to solidify for 60 min at 20°C. 2.5 × 105 CMTMR- or CMFDA-labeled ECs were seeded into individual Matrigel-coated wells and incubated for 24 h. Finally, cells were fixed in 4% PFA/HBSS for 30 min and samples were analyzed by confocal laser scanning microscopy. In some experiments equal numbers of prelabeled BECs and LECs were mixed 1:1, and then subjected to the tube-forming assay.
ECs were grown to confluence in EC growth medium MV in 75-cm2 culture flasks (Becton Dickinson), or onto 0.4-μm poresize Transwells™ inserted into individual wells of 24-well plates (Costar). Then, full medium was replaced by EGF- and hydrocortisone-deficient EC growth medium MV, and cells were cultured for 24 h to confluence. Plastic-adherent and Transwell™-bound ECs were washed twice and cells were cultured in the presence or absence of TNFα (100 U/ml) or IL-1β (0.1 ng/ml; both from R&D Systems). After 24 h, culture fluid from supernatant (from the upper and lower compartment in Transwell™ experiments) were harvested, and CCL19, CCL21, and CCL20 were measured by ELISA (vide infra).
96-well ELISA plates (MaxiSorp™; Nunc) were coated with affinity-purified rabbit anti-CCL19, anti-CCL20, or anti-CCL21 Abs (0.2 μg/well each; all from PeproTech). 200 μl of EC-conditioned medium, fresh EC culture medium, or serial dilutions of recombinant CCL19, CCL20, or CCL21 (all from R&D Systems) were incubated at 4°C overnight. Plates were rinsed, and 0.2 μg of affinity-purified goat anti-CCL19, anti-CCL20, or anti-CCL21 (all from R&D Systems) were added to individual wells. After 45 min, plates were washed and incubated with biotin-conjugated rabbit anti–goat IgG, followed by incubation with alkaline phosphatase–conjugated streptavidin for 30 min (both from Sigma-Aldrich). CSPD alkaline phosphatase (Boehringer) was used as substrate, and signal intensities were measured on a luminometer (Berthold). All ELISA systems used were chemokine specific, and in control experiments 11 additional nontarget chemokines (CCL2, CCL3, CCL5, CCL7, CCL8, CCL13, CCL17, CCL22, CXCL12, CXCL13, CX3CL1; all from R&D Systems) failed to produce signals.
Dermal LECs, but not BECs, express podoplanin, while both EC subsets display CD34 (
Separated microvascular EC populations were cultured in standard EGF-, hydrocortisone-, and bovine hypothalamic extract–conditioned EC growth medium (EC growth medium MV™). They formed cell clusters in the first days and, then, progressively confluent EC monolayers by day 7 to 10. Monolayers of LECs and BECs were indistinguishable by phase contrast microscopy (
As the number of LECs isolated directly from dermal cell suspensions was relatively low, we increased their yield by expanding freshly prepared dermal cells in EC growth medium, followed by enrichment of ECs by use of UEA I–conjugated magnetic beads, and two further passages of UEA I+ ECs (Materials and Methods, approach B). Bulk cultured microvascular ECs, while of homogeneous appearance by light microscopy, contained two immunophenotypically distinct cell populations (
Expression of EC subset-defining and pan-EC antigens by LECs and BECs was determined at various passages (passage 1–7) by flow cytometry (EC subsets generated by approach A and B) as well as by Northern and/or Western blotting (EC subsets generated by approach B). Among the subset-restricted markers, LECs retained expression of 38 kD podoplanin, while BECs were consistently devoid of this moiety, irrespective of the purification strategy used (
LECs and, to a much lesser extent, BECs express the VEGF-C/D receptor Flt-4 in vivo
When grown to confluence, ECs of both types sequester CD31 and VE-cadherin (
When cultures containing BECs and LECs were grown to confluence and replated for 12 h, islands of LECs formed that were surrounded by BECs (
Does this imply that LECs and BECs are capable of cell lineage–restricted cell recognition? To address this further, fluorescent dye–labeled BECs and LECs were subjected to tube-forming assays on Matrigel. Separately grown BECs and LECs formed tube-like structures (
Confluent LECs and BECs were stimulated with TNFα or IL-1β or left nonstimulated. Chemokine production was assessed by ELISA. Secondary lymphoid tissue chemokine (SLC)/CCL21 was secreted by nonstimulated and, to a lesser extent, by cytokine-activated LECs but not by BECs or by other cell types (keratinocytes, fibroblasts, large blood vessel ECs) either in their resting or cytokine (TNFα, IL-1β)-activated state (
To investigate directional chemokine secretion, LECs were grown to confluence on 0.4-μm poresize Transwell™ filters inserted into 24-well tissue culture plates. Then, the culture medium above and below the membrane-bound EC monolayers was replaced by TNFα- or IL-1β supplemented or by nonsupplemented medium, and the amount of chemokines secreted into the apical and into the basolateral direction was measured after 24 h. To control for chemokine leakage through the LEC monolayer, CCL19, which is not secreted by ECs, was added into the upper compartment and the amount of CCL19 recovered in the upper and the lower compartment was measured. After 24 h, only 10% of totally recovered CCL19 was in the lower compartment. Thus, LECs formed a tight barrier that cannot be easily penetrated even by small molecules like chemokines (
EC biology and pathology owe their recent explosive growth, in part, to methods for cell isolation and propagation. Major advances in these fields, e.g., the identification of EC growth factors, chemokines and their receptors, the molecular understanding of how ECs interact with leukocytes and neoplastic cells, and others
In the past, several attempts have been made to obtain pure populations of bona fide LECs, for example by isolating cells from lymphatic vascular tumors
Recently, VEGF-C was established as a lymphatic vessel–specific growth factor as evidenced by dermal lymphangioma-like vessel proliferation in mice that overexpress VEGF-C in the epidermis
Do BECs and LECs form homotypic or also heterotypic cell contacts? Individually grown LECs and BECs formed conventional EC monolayers when grown to confluence. In mixed cultures that contained both EC types, LECs and BECs could not be distinguished by morphology, thus pretending their belonging to a single cell lineage. However, anti-podoplanin immunostaining revealed that LECs formed islands of homotypic cell aggregates. This homotypic association was even more evident when mixed cultures were grown to confluence, and EC bilayers formed that consisted of a lower layer of BECs and of an upper layer of LECs. This indicates specific mechanisms of homotypic recognition and formation of cell contacts, and presumably also different strength of cell-substrate adhesion. Also, signals elaborated by either cell type do not suffice to arrest growth of the other cell type.
Homotypic cell association was observed also when mixed EC populations were subjected to vascular “tube-formation” assays in Matrigel. LECs and BECs formed capillary “tubes” equally well when cultured separately.
While the molecular basis of this remarkable selectivity in cell–cell interaction remains to be established, our results show that cell contacts between LECs and those between BECs strikingly differ in the amount of junctional protein recruitment, and in the degree to which adjacent cell membranes were juxtaposed. LECs expressed less VE-cadherin, CD31, and catenins than BECs at junctional sites and formed rather narrow contact areas with neighboring cells. Nevertheless, LECs formed organized and close cell contacts that involved adherens, gap, and, even, tight junctions and were only poorly penetrated by exogenous soluble proteins. These elaborate and complex cellular interactions and junctions suggest a more stringent barrier function of LECs in lymphatic vessels than previously anticipated. Similar to BECs, LECs contain typical endothelial caveolae that mediate transcytotic transport across the endothelial barrier.
Lymphatic capillaries direct migratory APCs, i.e., dendritic cells (DCs), from the tissues toward the regional lymph nodes
Mice with a deletion in the
The fraction of SLC/CCL21 and MIP-3α/CCL20 that LECs secrete into the apical direction and thus presumably into the lumen of lymphatic capillaries will drain into regional nodes. As intradermally injected chemokines can be presented by ECs of high endothelial venules in lymph nodes
Taken together, stable EC subset-restricted gene expression and polarized secretion of function-related chemokines demonstrate that LECs and BECs belong to two different EC lineages. This is in agreement with the EC subtype-restricted importance of certain homeobox gene products, e.g., Prox-1, for the development of the lymphatic but not the blood vascular system
This work was supported by the Interdisciplinary Cooperation Project (ICP) Molecular Medicine, a program of the Austrian Ministry for Science (to D. Maurer and G. Stingl), by the Center of Molecular Medicine and the Austrian Academy of Sciences (to D. Maurer), and the Fonds zur Förderung der Wissenschaftlichen Forschung, SFB 05, Project 007; and EC Contract no. QLG1-2000-00619 (to D. Kerjaschki).
E. Kriehuber and S. Breiteneder-Geleff contributed equally to this work.
Identification of dermal BECs and LECs in cryostat sections of human skin (A–C), and isolation by FACS® (D–F). (A–C) Immunofluorescence double-labeling using Abs to podoplanin (TRITC, red), and CD34 (FITC, green). FITC and TRITC fluorescence images are shown in B and C. Panel A illustrates the double exposure with LECs (yellow-red) expressing both podoplanin and CD34. Microvascular tubes shown are ascending from the superficial vascular plexus (original magnification: ×400). (D–F) Isolation of BECs and LECs from dermal cell suspensions (approach A) prepared by enzymatic digestion. Cells were triple-labeled with anti-CD45 Cy5, anti-CD34-PE, and anti-podoplanin. CD45− cells were gated electronically, and
BECs and LECs cannot be distinguished by conventional light microscopy when grown separate (A, BECs; B, LECs). (C) In mixed cultures, immunolabeling with anti-podoplanin (TRITC, red) and anti-vWF (FITC, green) reveal multicellular islands of podoplanin+/vWF+ LECs surrounded by podoplanin−/vWF+ BECs. BECs express more vWF than LECs (see also
Isolated LECs and BECs maintain their lineage-restricted antigen expression profile during in vitro expansion. (A) FACS® analysis. Primary LECs and BECs were isolated by FACS®, and propagated in vitro. Single cell suspensions of BECs or LECs were exposed to anti-CD31, anti–VE-cadherin/cadherin-5, anti-CD44, anti–PAL-E or to isotype-matched control mAbs and to rabbit anti-vWF, anti-podoplanin, or to preimmune rabbit serum. Dead cells were excluded by propidium iodide counterstaining and appropriate gate settings. For the analysis of vWF expression, ECs were fixed and permeabilized before immunostaining. Cells were used after the sixth passage (expansion factor: ×2,500) with the exception of cells that were stained with PAL-E which were harvested after passage two. X-axis: log fluorescence intensity; y-axis: relative cell numbers. The reactivities of specific and control Abs are shown by open and closed histograms, respectively. (B) Northern and (C and D) Western blot analyses. Third passage bulk microvascular ECs were flow sorted into podoplanin−/CD31+/CD45− BEC and podoplanin+/CD31+/CD45− LEC populations. After two further passages cells were harvested and total cellular RNA and protein were isolated. (B)
In vitro–cultured LECs contain caveolin and caveolae, and WP bodies. ECs were grown to confluence, fixed, labeled by indirect immunofluorescence for caveolin (A), or by a preembedding immunogold protocol for podoplanin (B). ECs express uniformly caveolin in a granular pattern (A) that corresponds in LECs to typical endothelial caveolae by electron microscopy (B). (C and D) Electron microscopy also reveals WP bodies in podoplanin-expressing LECs. Original magnification in A: ×700; B: ×12.000; C and D: ×45.000.
BECs and LECs form separate homotypic layers in mixed EC cultures. Mixed BECs and LECs were allowed to reach confluence and then were cultured for four additional days. (A–D) Cells were fixed and stained with anti-podoplanin Abs (FITC) and anti-CD31 (TRITC). In the double exposure shown in A, podoplanin+/CD31+ ECs (yellow) appear to cover the monolayer of podoplanin−/CD31+ ECs (red). In B–D, vertical optical sectioning by confocal microscopy directly shows that podoplanin+/CD31+/LECs (green; C and D) are positioned on top of podoplanin
LECs form continuous homotypic cell junctions. (A–D) Cell contacts formed by LECs and those by BECs differ in the extent of junctional protein recruitment. Confluent LECs (A and C) and BECs (B and D) were fixed, and stained with anti-CD31 (A and B) or anti–VE-cadherin (C and D). LECs display a thin rim of CD31 and VE-cadherin in their junctional areas while BECs form ruffled, indented homotypic junctions with a broad overlap of the VE-cadherin- and CD31-bearing cell membranes. (E-I) Podoplanin+ LECs were identified by 10 nm immunogold labeling. LECs form typical junctional complexes consisting of adherent junctions (E, double-headed arrow) and tight junctions (arrowheads in E–H). (I) Occasionally, gap junctions were observed.
Chemokine secretion of isolated LECs and BECs. (A and B) LECs, but not BECs, secrete SLC/CCL21, but both EC types produce MIP-3α/CCL20 upon activation. EC subsets grown to confluence were exposed to EGF- and hydrocortisone-deficient medium (non-stim.) or to the same medium supplemented with TNFα or IL-1β. 24 h supernatants were analyzed by CCL21- (A) and CCL20-specific ELISAs (B). The concentrations of chemokines produced by BECs (hatched bars) and LECs (black bars) are shown (mean values (±SD) obtained in two independent experiments). (C) LECs secrete CCL21 but not CCL20 basolaterally. LECs grown to confluence on 0.4-μm poresize TranswellTM filters, were nonstimulated (non-stim.) or stimulated with TNFα- or IL-1β for 24 h. CCL21 (black bars) and CCL20 (hatched bars) secreted into the upper (apical) and the lower (basolateral) chamber of the Transwells™ were measured. The percentage of chemokine recovered from the lower chamber relative to the total amount of secreted chemokine (i.e., secreted into the upper and lower chamber) is shown. Mean values (±SD) obtained from triplicate cultures; n.d.; not done. (D) LEC monolayers form a tight barrier for exogenous CCL19 used as a tracer. To control for leakage of chemokines through the LEC monolayer, MIP-3β/CCL19 was added to the upper chamber. Data are given as the percentage of the amount of chemokine recovered from the lower chamber relative to the amount of chemokine retrieved from the upper and lower chamber. Approximately 80% of initially added CCL19 was recovered after 24 h. Mean values (±SD) obtained from triplicate cultures.
Lymph and blood ECs form independent capillary tubes that wind around each other. Flow-sorted primary BECs or LECs were expanded through six passages, harvested, and labeled with cell-permeant dyes emitting red and green fluorescence, respectively. Labeled BECs (A and B; red), LECs (C and D; green), or BECs and LECs mixed in a 1:1 ratio (E–H) were seeded onto Matrigel, cultured in EGF- and hydrocortisone-deficient medium for 24 h, fixed, and analyzed by confocal microscopy. A, C, and E are phase contrast images corresponding to the fluorescence images B (red), D (green), and F–H (green, red), respectively. F and G show the single red and single green fluorescence signals of the double exposure in H. (F and G) In mixed cultures, BECs and LECs form tubes that are built up by one EC subtype only. (H) Homotypic BEC and LEC tubes are closely juxtaposed in a double helical pattern. Original magnification in A–G: ×100; H: ×400.