The complement component C1q is a pro-inflammatory molecule highly expressed in the tissue microenvironment that can interact with the extracellular matrix. Here, we describe a method to test how C1q bound to hyaluronic acid impacts cell adhesion.
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Method Article
* These authors contributed equally
The complement component C1q is a pro-inflammatory molecule highly expressed in the tissue microenvironment that can interact with the extracellular matrix. Here, we describe a method to test how C1q bound to hyaluronic acid impacts cell adhesion.
It has been increasingly demonstrated that the tumor microenvironment plays an active role in neoplasia growth and metastasis. Through different pathways, tumor cells can efficiently recruit stromal, immune and endothelial cells by secreting stimulatory factors, chemokines and cytokines. In turn, these cells can alter the signaling properties of the microenvironment by releasing growth-promoting signals, metabolites and extracellular matrix components to sustain high proliferation and metastatic competence. In this context, we identify that the complement component C1q, highly expressed locally by a range of human malignant tumors, upon interacting with the extracellular matrix hyaluronic acid, strongly affects the behavior of primary cells isolated from human tumor specimens. Here, we describe a method to test how C1q bound to hyaluronic acid (HA) impacts tumor cell adhesion, underlying the fact that the biological properties of key components of the extracellular matrix (in this case HA) can be shaped by bioactive signals toward tumor progression.
The tumor microenvironment (TME) influences cancer development and progression since it can provide a permissive niche for cell survival, growth and invasion. The identification of new key players in TME may be useful for the discovery of new molecular tools for target therapy. TME includes a complex and dynamic network of non-malignant cells, such as endothelial cells, fibroblasts and cells of the immune system, embedded in the surrounding extracellular matrix (ECM) components including collagens, laminins, fibronectins, proteoglycans and hyaluronans. Both tumor and non-tumor cells synthesize and secrete ECM components together with cytokines, chemokines, growth factors and inflammatory and matrix remodeling enzymes that overall alter the physical, chemical and signaling properties of TME. Among these constituents, hyaluronic acid (HA) has emerged to exert a crucial role in tumor biology. Despite its simple chemical composition, HA, together with its HA-binding molecules (hyaladherins), can modulate angiogenesis, immune system responsiveness and ECM remodeling in a size and concentration dependent manner1.
The complement (C) system is also part of the local TME, which has recently received increasing attention. The C system encompasses a set of soluble and membrane-bound proteins involved in the first line of defense against non-self-cells, unwanted host elements and pathogens. Functionally, the C links the two-effector arms of innate and adaptive systems to promote either direct cell killing or mounting of an inflammatory response2. C activation can suppress tumor growth, by destroying cancer cells or inhibiting their outgrowth, but it has become increasingly clear that it can possess a tumor-promoting activity by sustaining chronic inflammation, promoting the establishment of an immunosuppressive milieu, inducing angiogenesis, and activating cancer-related signaling pathways3. In this context, C1q, the first recognition molecule of the classical pathway of the C system has emerged to exert important functions in the tumor microenvironment independently of C activation4. C1q has been shown to be expressed locally by a range of human malignant tumors, where it can favor cancer cell adhesion, migration and proliferation in addition to angiogenesis and metastasis5. Interestingly C1q interacts with a major constituent of the ECM such as HA.
We developed a technique to isolate the primary cancer cells from the tumor mass. Furthermore, we created the matrix, which can stimulate tumor microenvironment, particularly the interaction between C1q and high molecular weight hyaluronic acid. C1q bound to HA was able to induce adhesion of the tumor cells.
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Tissue samples from patients were collected after informed consent following approval of the ethical considerations by the Institutional Board of the University Hospital of Trieste, Italy.
1. Tumor cell isolation and culture (Day 1)
2. HA coating (Day 1)
3. C1q coating (Day 2)
4. Cell labeling with FAST DiI
5. Cell Adhesion on HA/C1q matrices (Day 1)
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HA is a negatively charged high-molecular-weight polysaccharide, which is made up of repeating (β,1-4)-D-glucuronic acid-(β,1-3)-N-acetyl-D-glucosamine disaccharide units (Figure 1B)7. The occurrence of the binding of HA on the 96-well plate as well as the efficiency of its immobilization were tested taking advantage of biotinylated HA (bio-HA). Different concentrations of Bio-HA, ranging from 10 µg/mL to 1 mg/mL, were re-suspended in ...
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We describe an easy method to investigate how the complement component C1q, interacting with hyaluronic acid, is able to modulate the behavior of primary cells isolated from human tumor tissues. Both HA and C1q are abundantly present in the tissue microenvironment both under physiological and pathological conditions, participating to several cell biological processes. For instance, C1q has been shown to be present in the microenvironment of the placenta where it favors extravillous trophoblast invasion of the matern...
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The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
We thank Ivan Donati for providing of HA, Leonardo Amadio, Gabriella Zito (Department of Gynaecology of IRCCS "Burlo Garofolo", Trieste, Italy) and Andrea Romano (Operative Clinical Unit of Anatomy and Pathological Histology, Cattinara Hospital, Trieste, Italy) for the tissue sample collection. We thank also Nicolò Morosini for the help in the video preparation and Alex Coppola, the voice. This work was supported by grants from the Institute for Maternal and Child Health, IRCCS "Burlo Garofolo", Trieste, Italy (RC20/16) and Fondazione Cassa di Risparmio Trieste to R.Bulla.
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| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| 100 µm pore filter | BD Falcon | 352360 | |
| Amphotericin B solution (fungizone) | Sigma-Aldrich | 1397-89-3 | |
| basic FGF | Immunological Sciences | GRF-15595 | |
| Calcium Chloride | Sigma-Aldrich | C-4901 | |
| Collagenase type I | Worthington Biochemical Corporation, DBA | MX1D12644 | |
| D-Glucose | Sigma-Aldrich | 50-99-7 | |
| DNase I | Roche | 10 104 159 001 | |
| EDTA | Sigma-Aldrich | 60-00-4 | |
| EGF | Immunological Sciences | GRF-10544 | |
| FAST DiI | Molecular probes, Invitrogen, Thermo Fisher Scientific | D7756 | |
| Fetal bovine serum | Gibco, Thermo Fisher Scientific | 10270-106 | |
| Fibronectin | Roche | 11051407001 | |
| Flask for cell culture | Corning | 430639 | Sterile, vented |
| Gentamicin solution | Sigma-Aldrich | G1397-10ML | |
| Hank’s Balanced Salt Solution (HBBS) | Sigma-Aldrich | H6648 | Supplemented with EDTA, Glucose, penicillin-streptamicin, gentamicin and fungizone |
| High molecular weight hyaluronic acid | Kind gift by Prof. Ivan Donati | ||
| Human endothelial serum free medium | Gibco, Thermo Fisher Scientific | 11111-044 | Supplemented with EGF (5 ng/mL), basic FGF (10 ng/mL), and 1% penicillin–streptomycin (Sigma-Aldrich) |
| Magnesium Chloride | Carlo Erba | 13446-18-9 | |
| Medium 199 with Hank’s salt | Sigma-Aldrich | M7653 | |
| Penicillin-Streptomycin | Sigma-Aldrich | P0781 | |
| Time-lapse microscopy | Nikon | Imaging System BioStation IM-Q | |
| Titertek Multiskan ELISA Reader | Flow Labs | ||
| Trypsin | Sigma-Aldrich | T4674 |
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