The fibroblasts isolated from human heart samples were cultured to confluence for 21 days to synthesize and deposit the extracellular matrix, forming a cohesive layer firmly adherent to the surface of the culture plate. Subsequent removal of cardiac fibroblasts, while preserving the deposited cardiac ECM, produced the substrate for studying the influence of myocardium-specific extracellular matrix on other cells within the cardiac tissue.
The concept of using a natural and tissue-specific substrate for in vitro cell culture has attracted the interest of biologists, leading to several attempts at developing such a substrate using fibroblasts isolated from neonatal animal hearts. As early as 1996, Vanwinkle et al.13 used neonatal rat cardiac fibroblasts to produce extracellular matrix coating on glass coverslips using EDTA, a calcium chelating agent, for cell separation. More recently, EDTA has been used in combination with a basic solution of Triton X-100 at lower concentrations14. Calcium ions mediate interactions between cells and extracellular matrix, as well as between different extracellular matrix molecules15. However, using such chelating agents can lead to matrix protein unfolding and loss of interactions between its different fibrillar and amorphous components, inevitably modifying the cardiac ECM obtained in vitro. In our experience, incubation with 0.5 mM EDTA required a lengthy time, with the first signs of cell detachment observable at the inverted phase-contrast microscope not appearing until after 2 h.
A similar method for in vitro decellularization was published by Hellewell et al.16 However, in the present protocol, a lower concentration of ammonium hydroxide (10 mM instead of 20 mM) was used, and Triton X-100 was added as a decellularization agent. While the authors of the mentioned protocol tested its application in three commercially available cell types, primitive cardiac fibroblasts were not included. Given the longstanding difficulty in obtaining and culturing adult human cardiomyocytes or cardiac fibroblasts in vitro, the focus here was on cardiac tissue and cells, which are of primary interest to cardiovascular research groups and cardiovascular regenerative medicine in general. It is possible that this solution may be suitable for other cell types as well.
While denaturation is necessary for protein solubilization, the use of a non-denaturing decellularization agent is essential for the quantitative and qualitative preservation of extracellular matrix components for further in vitro use. Therefore, Triton X-100 was used instead of SDS to remove the fibroblasts, leaving the intact cardiac ECM coating on the surface of the Petri dish. Incubation with a basic solution of Triton X-100 induces membrane permeabilization and cell lysis, resulting in fibroblast removal. If nuclear debris is an issue (for example, when subsequent experiments require cell transfection or nucleic acid molecular analysis), it is possible to minimize DNA content with DNase I before seeding other cell types on cardiac ECM.
The most significant advantage of the method detailed here is the ability to obtain cardiac ECM typical of different conditions related to human heart structure and function, as the same fibroblasts influenced by those changing conditions in vivo deposit the extracellular matrix in vitro. Thus, the composition of the fibroblast-derived coating of the culture dish changes according to the in vivo activity of the fibroblasts isolated from the heart, allowing subsequent studies of cell-matrix functional interactions in various normal and pathological conditions17,18.
Although it may be tempting to stimulate fibroblast activity in vitro by adding ascorbic acid, known to stimulate the production of collagen and glycosaminoglycans, such selective stimulation is discouraged, as it could potentially modify the composition of the obtained cardiac ECM towards a fibrotic phenotype19. Instead, depending on the study's aim, the composition of the cardiac ECM can be influenced in vitro by the addition of factors such as angiotensin peptides or adrenaline20,21, known to play a crucial role in the pathogenesis and pathophysiology of specific cardiovascular disorders.
The critical step in the process of extracellular matrix deposition, followed by fibroblast layer removal from culture, is the adhesion and preservation of fibroblast-derived matrix deposited on the dish surface. Unlike previously discussed studies where neonatal fibroblasts were cultured for only a few days, adult human cardiac fibroblasts survive in culture in the confluent state for as long as 21 days, continuously synthesizing and secreting extracellular matrix. It is essential to use gelatin-coated culture dishes and visually control fibroblast detachment, reducing the time of incubation in the decellularization solution to the necessary minimum.
In the present protocol, a feasible method for obtaining cardiac extracellular matrix in vitro is described. The 2D monolayer system reflects the in vivo microenvironment thanks to the presence of the native extracellular matrix produced by the same cells that are responsible for extracellular matrix synthesis and maintenance, namely fibroblasts, with the composition influenced by the biological cues present in vivo. Other biomimetic and 3D cell culture substrates or systems, such as hydrogels, spheroids, organoids, and 3D bioprinting methods, have attracted considerable attention as a strategy to mimic in vivo conditions, allowing the study of the complex spatial cell-cell and cell-ECM interactions22,23. These approaches address the spatial and biomechanical cues for in vitro cell growth and differentiation24,25, but they present strong limitations with regard to the composition and characteristics of the produced substrates, which hardly resemble those of the native tissue. Based on the scope of the study and its applications, the 2D cardiac ECM or 3D biomimetic scaffolds can be used, and together, they represent a complementary method for enhancing the current knowledge of cell biology and the capabilities of tissue regeneration.
Limitations
The method described is subject to certain limitations, particularly concerning the decellularization process designed to eliminate cellular elements. This process could inadvertently disturb the natural architecture or composition of the ECM. However, the ECM obtained from normal and pathological heart-derived fibroblasts differently influences the proliferation, apoptosis, and migration of cultured cells11,18, indicating that the described method preserves at least the main determinants of these biological processes.
Similarly, cardiac ECM obtained from different donors may have different compositions, even if the main cardiac pathology is the same. As with all human samples, there is great variability resulting from environmental factors, genetic determinants, pharmacological or other therapies, among others26. The cardiac ECM obtained by the described method should not always be expected to have the same composition and characteristics. If qualitative reproducibility is essential, it may be worth considering expanding the isolated fibroblasts up to two times (as described in the present protocol) to produce ECM on numerous Petri dishes or using fibroblasts obtained from different donors in the same Petri dish for ECM production.