@phdthesis{Endres2024, author = {Endres, Leo Maximilian}, title = {Development of multicellular \(in\) \(vitro\) models of the meningeal blood-CSF barrier to study \(Neisseria\) \(meningitidis\) infection}, doi = {10.25972/OPUS-34621}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-346216}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2024}, abstract = {Neisseria meningitidis (the meningococcus) is one of the major causes of bacterial meningitis, a life-threatening inflammation of the meninges. Traversal of the meningeal blood-cerebrospinal fluid barrier (mBCSFB), which is composed of highly specialized brain endothelial cells (BECs), and subsequent interaction with leptomeningeal cells (LMCs) are critical for disease progression. Due to the human-exclusive tropism of N. meningitidis, research on this complex host-pathogen interaction is mostly limited to in vitro studies. Previous studies have primarily used peripheral or immortalized BECs alone, which do not retain relevant barrier phenotypes in culture. To study meningococcal interaction with the mBCSFB in a physiologically more accurate context, BEC-LMC co-culture models were developed in this project using BEC-like cells derived from induced pluripotent stem cells (iBECs) or hCMEC/D3 cells in combination with LMCs derived from tumor biopsies. Distinct BEC and LMC layers as well as characteristic expression of cellular markers were observed using transmission electron microscopy (TEM) and immunofluorescence staining. Clear junctional expression of brain endothelial tight and adherens junction proteins was detected in the iBEC layer. LMC co-culture increased iBEC barrier tightness and stability over a period of seven days, as determined by sodium fluorescein (NaF) permeability and transendothelial electrical resistance (TEER). Infection experiments demonstrated comparable meningococcal adhesion and invasion of the BEC layer in all models tested, consistent with previously published data. While only few bacteria crossed the iBEC-LMC barrier initially, transmigration rates increased substantially over 24 hours, despite constant high TEER. After 24 hours of infection, deterioration of the barrier properties was observed including loss of TEER and altered expression of tight and adherens junction components. Reduced mRNA levels of ZO-1, claudin-5, and VE-cadherin were detected in BECs from all models. qPCR and siRNA knockdown data suggested that transcriptional downregulation of these genes was potentially but not solely mediated by Snail1. Immunofluorescence staining showed reduced junctional coverage of occludin, indicating N. meningitidis-induced post-transcriptional modulation of this protein, as previous studies have suggested. Together, these results suggest a potential combination of transcellular and paracellular meningococcal traversal of the mBCSFB, with the more accessible paracellular route becoming available upon barrier disruption after prolonged N. meningitidis infection. Finally, N. meningitidis induced cellular expression of pro-inflammatory cytokines and chemokines such as IL-8 in all mBCSFB models. Overall, the work described in this thesis highlights the usefulness of advanced in vitro models of the mBCSFB that mimic native physiology and exhibit relevant barrier properties to study infection with meningeal pathogens such as N. meningitidis.}, subject = {Bakterielle Hirnhautentz{\"u}ndung}, language = {en} } @phdthesis{Malkmus2023, author = {Malkmus, Christoph}, title = {Establishment of a 3D \(in\) \(vitro\) skin culture system for the obligatory human parasite \(Onchocerca\) \(volvulus\)}, doi = {10.25972/OPUS-31717}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-317171}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2023}, abstract = {Onchocerciasis, the world's second-leading infectious cause of blindness in humans -prevalent in Sub-Saharan Africa - is caused by Onchocerca volvulus (O. volvulus), an obligatory human parasitic filarial worm. Commonly known as river blindness, onchocerciasis is being targeted for elimination through ivermectin-based mass drug administration programs. However, ivermectin does not kill adult parasites, which can live and reproduce for more than 15 years within the human host. These impediments heighten the need for a deeper understanding of parasite biology and parasite-human host interactions, coupled with research into the development of new tools - macrofilaricidal drugs, diagnostics, and vaccines. Humans are the only definitive host for O. volvulus. Hence, no small-animal models exist for propagating the full life cycle of O. volvulus, so the adult parasites must be obtained surgically from subcutaneous nodules. A two-dimensional (2D) culture system allows that O. volvulus larvae develop from the vector-derived infective stage larvae (L3) in vitro to the early pre-adult L5 stages. As problematic, the in vitro development of O. volvulus to adult worms has so far proved infeasible. We hypothesized that an increased biological complexity of a three-dimensional (3D) culture system will support the development of O. volvulus larvae in vitro. Thus, we aimed to translate crucial factors of the in vivo environment of the developing worms into a culture system based on human skin. The proposed tissue model should contain 1. skinspecific extracellular matrix, 2. skin-specific cells, and 3. enable a direct contact of larvae and tissue components. For the achievement, a novel adipose tissue model was developed and integrated to a multilayered skin tissue comprised of epidermis, dermis and subcutis. Challenges of the direct culture within a 3D tissue model hindered the application of the three-layered skin tissue. However, the indirect coculture of larvae and skin models supported the growth of fourth stage (L4) larvae in vitro. The direct culture of L4 and adipose tissue strongly improved the larvae survival. Furthermore, the results revealed important cues that might represent the initial encapsulation of the developing worm within nodular tissue. These results demonstrate that tissue engineered 3D tissues represent an appropriate in vitro environment for the maintenance and examination of O. volvulus larvae.}, subject = {Tissue Engineering}, language = {en} } @phdthesis{Leikeim2022, author = {Leikeim, Anna}, title = {Vascularization Strategies for Full-Thickness Skin Equivalents to Model Melanoma Progression}, doi = {10.25972/OPUS-27295}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-272956}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2022}, abstract = {Malignant melanoma (MM) is the most dangerous type of skin cancer with rising incidences worldwide. Melanoma skin models can help to elucidate its causes and formation or to develop new treatment strategies. However, most of the current skin models lack a vasculature, limiting their functionality and applicability. MM relies on the vascular system for its own supply and for its dissemination to distant body sites via lymphatic and blood vessels. Thus, to accurately study MM progression, a functional vasculature is indispensable. To date, there are no vascularized skin models to study melanoma metastasis in vitro, which is why such studies still rely on animal experimentation. In the present thesis, two different approaches for the vascularization of skin models are employed with the aim to establish a vascularized 3D in vitro full-thickness skin equivalent (FTSE) that can serve as a test system for the investigation of the progression of MM. Initially, endothelial cells were incorporated in the dermal part of FTSEs. The optimal seeding density, a spheroid conformation of the cells and the cell culture medium were tested. A high cell density resulted in the formation of lumen-forming shapes distributed in the dermal part of the model. These capillary-like structures were proven to be of endothelial origin by staining for the endothelial cell marker CD31. The established vascularized FTSE (vFTSE) was characterized histologically after 4 weeks of culture, revealing an architecture similar to human skin in vivo with a stratified epidermis, separated from the dermal equivalent by a basement membrane indicated by collagen type IV. However, this random capillary-like network is not functional as it cannot be perfused. Therefore, the second vascularization approach focused on the generation of a perfusable tissue construct. A channel was molded within a collagen hydrogel and seeded with endothelial cells to mimic a central, perfusable vessel. The generation and the perfusion culture of the collagen hydrogel was enabled by the use of two custom-made, 3D printed bioreactors. Histological assessment of the hydrogels revealed the lining of the channel with a monolayer of endothelial cells, expressing the cell specific marker CD31. For the investigation of MM progression in vitro, a 3D melanoma skin equivalent was established. Melanoma cells were incorporated in the epidermal part of FTSEs, representing the native microenvironment of the tumor. Melanoma nests grew at the dermo-epidermal junction within the well stratified epidermis and were characterized by the expression of common melanoma markers. First experiments were conducted showing the feasibility of combining the melanoma model with the vFTSE, resulting in skin models with tumors at the dermo-epidermal junction and lumen-like structures in the dermis. Taken together, the models presented in this thesis provide further steps towards the establishment of a vascularized, perfusable melanoma model to study melanoma progression and metastasis.}, subject = {Tissue Engineering}, language = {en} }