1. Introduction
Postoperative peritoneal adhesions remain a frequent and clinically significant complication of abdominal and pelvic surgery, affecting the majority of patients to varying degrees after operative intervention. Adhesions are associated with substantial morbidity, including chronic abdominal or pelvic pain, small bowel obstruction, female infertility, difficulties during reoperative surgery, and increased risk of inadvertent enterotomy. They also impose a considerable socioeconomic burden through hospital readmissions, prolonged healthcare utilization, and the need for additional surgical procedures. Their formation reflects an exaggerated and dysregulated wound-healing response in which immune cells, fibrin deposition, mesothelial repair, and tissue remodeling interact closely. To develop better preventive treatments for postoperative abdominal adhesions, the cellular and molecular basis of adhesion formation must be better understood [
1,
2,
3,
4].
Macrophages have emerged as important regulators of postoperative tissue responses, but prior work suggests that their effects are context-dependent. Resident peritoneal macrophages are long-lived, tissue-adapted cells that normally survey the peritoneal cavity, clear debris, and rapidly respond to sterile injury. Circulating monocytes can also be recruited from the blood after tissue damage, in part through CCR2-dependent pathways, and may differentiate locally into monocyte-derived macrophages whose phenotypes are shaped by the tissue environment [
5,
6,
7].
Thus, in pathological situations, macrophages are a heterogeneous population. Recent single-cell studies further demonstrate that peritoneal macrophages comprise multiple transcriptionally and functionally distinct states, including resident, transitory, monocyte-derived, scar-associated, and pro-resolving populations. These states are influenced by ontogeny, tissue localization, and the inflammatory microenvironment, supporting a model that extends beyond the conventional M1/M2 classification; however, phenotypic overlap and state transitions make binary resident-versus-infiltrating assignments difficult without lineage-resolved approaches [
8]. In the peritoneal cavity, resident macrophages may act as early responders that organize fibrin containment and mesothelial repair, yet under some conditions, they also contribute to adhesion formation by promoting cell aggregation and scar-like remodeling. By contrast, infiltrating macrophages derived from circulating monocytes may either amplify injury or support resolution, depending on the inflammatory milieu and the phase of healing. This heterogeneity is important because the postoperative lesion is shaped not only by the presence of macrophages, but by the balance between resident and circulating cell populations. Recent single-cell analyses further show that resident large peritoneal macrophages, recently recruited monocyte-derived macrophages, and transitional macrophage states exhibit different transcriptional programs and may have divergent effects on tissue remodeling and resolution [
3,
8,
9,
10,
11].
Macrophages can express overlapping inflammatory and wound-healing-associated transcriptional programs. Although M1/M2 terminology remains common, it does not define discrete in vivo populations. In the present study, IL1B, TNF, and IL6 were treated as inflammatory readouts, whereas ARG1, MRC1, and IL10 were interpreted as wound-healing-associated transcripts rather than as evidence of a cell-specific M1 or M2 phenotype [
12,
13,
14].
CCR2 is a key regulator of monocyte egress from the bone marrow and recruitment to inflamed tissues, including the peritoneal cavity, making CCR2 deficiency useful for probing CCR2-dependent monocyte and hematopoietic recruitment; however, global CCR2 deficiency is not macrophage-specific [
15,
16]. Previous studies in the ischemic button model demonstrated that macrophage polarization influences adhesion development, with M2-associated markers and arginase activity linked to reduced adhesions, whereas macrophage-specific PPAR-γ deficiency aggravated adhesion formation and pharmacological PPAR-γ activation was protective [
2]. Similarly, studies of postoperative ileus showed that recruited monocyte-derived macrophages coordinate both inflammatory and regulatory responses after abdominal surgery through IL-1 and IL-10 signaling pathways [
17,
18]. Consistent with this concept, a recent study identified CD163
+ macrophages as an anti-adhesive population. These cells reduced mesothelial PAI-1 secretion and enhanced fibrinolytic activity, thereby limiting postoperative adhesion formation [
19]. The present study was designed to examine the contribution of macrophage-rich peritoneal and mesenteric compartments, the hematopoietic origin of macrophage-like cells accumulating in ischemic buttons, and the association between CCR2-dependent recruitment and postoperative adhesion formation. We used clodronate liposomes, bone marrow chimerism, and global CCR2 deficiency as complementary, but not cell-type-exclusive, approaches. Our objective was to determine whether these experimentally defined perturbations were differentially associated with adhesion formation and postoperative gene-expression responses, without presuming that they selectively identify resident or infiltrating macrophage subsets.
2. Materials and Methods
2.1. Experimental Design
Peritoneal adhesions were induced in mice using the ischemic button model of standardized focal peritoneal injury, a well-established approach for studying adhesion pathogenesis and previously used in mechanistic studies of macrophage polarization and adhesion formation [
2]. Experimental groups included vehicle-treated and clodronate liposome-treated mice, wild-type and CCR2-deficient mice, and bone marrow chimeras generated to trace hematopoietic cell origin. Adhesions were scored at postoperative day 7 and quantified by using an adhesion score: score 0, no adhesions; score 1, thin, pellucid adhesions; score 2, tensile adhesion; score 3, inseparable and vascularized adhesion; and score 4, entire abdomen linked by adhesions [
2]. Cellular and transcriptional analyses were performed at postoperative day 1 or day 3 as specified. No criteria were set a priori for including and excluding animals during the experiment. No randomisation was used to allocate experimental units. During group allocation, the investigator responsible for assigning participants to the intervention groups was aware of the allocation sequence. Outcome assessment and data analysis were performed by at least one additional assessor who was blinded to group allocation. No formal study protocol was prepared or publicly registered before the commencement of the study.
2.2. Animals
Experiments were performed with WT 8- to 12-week-old male C57BL6/J mice (Janvier, Saint Berthevin Cedex, France) with a mean body weight of 20–25 g. Additionally, CCR2−/−, CD45.1 were obtained from Jackson Laboratories (Charles River, Sulzfeld, Germany). Animals were housed under specific pathogen-free conditions with controlled temperature and humidity and maintained on a 12 h light/dark cycle with ad libitum access to food and water. All experiments were performed in accordance with federal law for animal protection and approved by the committee for animal experiments of North-Rhine-Westfalia (Approval Code: 84-02.04.2014.A509). Only male mice were used. Therefore, the findings may not generalize to female mice, in which peritoneal immune composition, inflammatory responses, fibrinolytic activity, and adhesion formation may differ.
2.3. Bone Marrow Transplantation
Recipient mice received 9 Gy total-body irradiation as a single dose for myeloablative conditioning. Bone marrow cells (BM) were collected from the femur and tibia of CD45.1 donor mice and administered intravenously to recipient mice at a dose of 1.2 × 107 cells per mouse, 7 h after irradiation. No antibiotic prophylaxis was used. The reconstitution period between bone marrow transplantation and ischemic button surgery was 8 weeks. Because irradiation does not necessarily eliminate radioresistant tissue-resident macrophages, donor-marker positivity was interpreted as evidence of donor hematopoietic origin rather than as a complete phenotypic definition of an infiltrating macrophage subset. All experiments were performed in accordance with federal law regarding animal protection and were approved by the state agency for nature, environment, and consumer protection (LANUV).
2.4. Ischemic Button Experiments
Potential confounders were minimized by standardizing the surgical procedures and outcome assessments, with all animals undergoing the same ischemic button protocol, the same anesthetic and analgesic regimen, and the same postoperative sampling time points. Housing conditions were also kept uniform under SPF conditions with controlled temperature and humidity, a 12 h light/dark cycle, and ad libitum food and water. Surgery was performed under aseptic conditions. Anaesthesia was induced using isoflurane (Abbott, Wiesbaden, Germany). For analgesia, animals received carprofen 5 mg/kg body weight subcutaneously. Peritoneal adhesion formation was induced by the construction of four buttons on the peritoneal wall. Via a median laparotomy, the peritoneum was lifted with a clamp, and a ligature was applied by first stitching through the base of the button and then ligating the peritoneum. Two buttons were placed on both sides of the peritoneum using a Vicryl® 6/0 suture (Ethicon, Somerville, NJ, USA). The abdomen was closed with a double-layered suture of the peritoneum (Vicryl ® 5/0) and skin (silk 5/0; Braun, Sempach, Switzerland).
2.5. Clodronate Liposome Treatment
Macrophage-rich compartments were depleted using 0.2 mL liposomes containing liposome-encapsulated dichloromethylene diphosphonate (CL2MDP) (50 mg clodronat/kg) as shown before. One day before surgery, 0.2 mL CL2MDP liposomes were administered i.p. Vehicle liposomes served as controls. Clodronate liposomes target phagocytic cells and are not exclusively specific for resident macrophages. Local and systemic effects on monocytes, selected dendritic cell populations, and other phagocytic cells cannot be excluded. The intervention was therefore interpreted as depletion of macrophage-rich compartments rather than selective depletion of resident macrophages.
Depletion efficacy was assessed in peritoneal lavage fluid and mesothelial window preparations. The intervention was chosen because transient pharmacologic macrophage depletion has previously been used in abdominal surgery models and can profoundly reduce macrophage abundance during the early postoperative interval [
20].
2.6. Cytokine and Marker Analysis
Expression of selected inflammatory and macrophage-associated transcripts in ischemic buttons and control peritoneum was assessed at postoperative days 1 and 3. No additional postoperative time points were analyzed. Gene expression of selected inflammatory and wound-healing-associated markers was analysed by PCR. Reagents were from Life Technologies unless specified otherwise. Total RNA was extracted with Trizol
® reagent using a tissue homogenizer (Precellys
® 24; Peqlab, Erlangen, Germany), followed by DNase I treatment. cDNA was synthesized using a High-Capacity cDNA rt kit (Life Technologies, Carlsbad, CA, USA). Expression of mRNA was quantified in triplicate by reverse transcription-PCR with specific probes/primers (
Table S1, Supplementary Materials). The PCR was performed in Power SYBR
® Green or Universal PCR Master Mix by amplification of 10 ng cDNA for 40 cycles (95°C for 15 s, 60°C for 1 min) on an AbiPrism
® 7900HT (Life Technologies). Data quantification was performed by the ΔΔCT method and value normalized with respect to glyceraldehyde-3-phosphate dehydrogenase (GAPDH) levels.
2.7. Immunofluorescence
Cells from IB were isolated after enzymatic digestion in a solution containing collagenase II (Worthington, Lakewood, NJ, USA), Dispase ® II (La Roche, Mannheim, Germany), DNase (La Roche, Darmstadt, Germany), bovine serum albumin, and trypsin inhibitor. Cells were centrifuged onto glass slides (cytospin method) and stained with rat anti-mouse F4/80 antibody (BM8; Life Technologies, Darmstadt, Germany) and CD 45 antibody (30-F11; ebioscience, San Diego, CA, USA). The nucleus was stained using 4′,6-diamidino-2-phenylindole (DAPI) (Life Technologies, Carlsbad, CA, USA). Cells were counted in five randomly chosen areas in each specimen at a magnification of ×200.
F4/80 staining was not considered sufficient to distinguish large resident peritoneal macrophages, small recruited macrophages, monocytes, neutrophils, or other myeloid populations. In the absence of a multiparameter flow-cytometric panel, F4/80+ cells are therefore referred to as F4/80+ or macrophage-like cells. CD45.1 positivity was interpreted as evidence of donor hematopoietic origin. Accordingly, CCR2 deficiency was interpreted at the level of CCR2-dependent hematopoietic recruitment rather than as a macrophage-subset-specific perturbation.
2.8. Animal Euthanasia
After indicated time points, animals were sacrificed for further analysis. Euthanasia was performed by cervical dislocation.
2.9. Statistics
Statistical analysis was performed with Prism V5.04 (GraphPad, San Diego, CA, USA) using one-way ANOVA with multiple comparisons and unpaired t-tests and displayed as means + SEM. Data were considered statistically significant at p-values < 0.05 (*), <0.01 (**), and <0.001 (***). Continuous data are presented as mean ± SEM unless otherwise stated. For comparisons between two independent groups, unpaired t-tests were used when assumptions were met. For comparisons involving more than two groups, one-way analysis of variance was used with the multiple-comparison correction specified in the corresponding figure legend. Prior to statistical analysis, the assumptions underlying each statistical test were evaluated. The distribution of continuous variables was assessed using visual inspection of histograms and Q–Q plots, supplemented by the Shapiro–Wilk test for normality. Homogeneity of variances was evaluated using Levene’s test.
4. Discussion
Postoperative peritoneal adhesions remain a major clinical problem because they are frequent, difficult to prevent, and associated with chronic pain, bowel obstruction, infertility, and reoperation risk [
19,
21]. This study identifies different associations between clodronate-sensitive, macrophage-rich peritoneal and mesenteric compartments and CCR2-dependent hematopoietic recruitment. These experimentally defined perturbations show different relationships with adhesion development but do not resolve phenotypically defined resident and infiltrating macrophage subsets. The CCR2-deficient phenotype is compatible with an adhesion-limiting association of intact CCR2-dependent recruitment in this model. However, global CCR2 deficiency affects monocyte mobilization and potentially other CCR2-expressing leukocyte populations. The observed phenotype should therefore be interpreted as the consequence of altered CCR2-dependent hematopoietic recruitment rather than macrophage-specific evidence. This is in line with a previous study showing that M2-like macrophage polarization and macrophage PPAR-γ signaling protect against adhesion formation [
2]. Accordingly, the present data should be viewed as hypothesis-generating evidence for potentially divergent contributions of macrophage-rich compartments and recruited hematopoietic cells, rather than proof that resident and infiltrating macrophage populations have distinct and opposing functions in adhesion pathogenesis.
A key finding of our work is that clodronate-mediated depletion of macrophage-rich peritoneal and mesenteric compartments was associated with reduced adhesion formation. The reduction in adhesion formation after clodronate treatment indicates that depletion of one or more clodronate-sensitive phagocytic populations alters the adhesion outcome. It does not identify which phagocytic population mediates this effect. Nevertheless, the intervention was not selective for resident macrophages. Moreover, F4/80
+ cell numbers in ischemic buttons were not reduced at day 3. Thus, the present data cannot determine whether the adhesion phenotype resulted from depletion of resident cells before lesion formation, altered early signaling, effects on other phagocytic populations, or a combination of these mechanisms. This is consistent with the concept that peritoneal macrophages are among the first responders to sterile injury and participate in fibrin containment, cytokine release, and mesothelial remodeling, processes that can either favor repair or, when dysregulated, drive pathological adhesion formation. Human and experimental studies have likewise shown that macrophages are present early after adhesion induction and that persistent inflammatory activity can remain detectable even in mature adhesions [
22,
23,
24].
At the same time, persistence of lesional F4/80+ cells at postoperative day 3 despite efficient depletion in lavage and mesenteric compartments argues against equating the clodronate-sensitive compartments with the entire lesional myeloid population. This discrepancy could reflect incomplete drug penetration, temporal repopulation, recruitment of circulating cells, or effects on other phagocytic populations. The present data do not establish which mechanism predominates, nor do they establish the tissue source or ontogeny of the persistent lesional F4/80+ cells.
The presence of CD45.1
+F4/80
+ cells in ischemic buttons supports recruitment of donor-derived hematopoietic cells with a macrophage-like phenotype. However, radioresistant resident macrophages may persist after irradiation, and F4/80/CD45.1 staining does not provide the phenotypic resolution required to identify all resident and recruited subsets. This finding is in line with broader literature showing that monocyte recruitment to inflamed tissues is a key determinant of postoperative immune responses and that tissue macrophage ontogeny strongly shapes effector function [
8,
25,
26].
CCR2 deficiency provided complementary evidence at the level of CCR2-dependent recruitment. CCR2-deficient mice were compared with wild-type controls to examine the relationship between CCR2-dependent recruitment, lesional F4/80+ cell accumulation, and adhesion formation. This approach was guided by prior postoperative ileus studies showing that CCR2 is central to monocyte trafficking into surgically traumatized bowel wall and thus may represent a shared recruitment pathway across postoperative inflammatory syndromes [
17,
18]. We found that loss of CCR2 reduced F4/80
+ cell accumulation within ischemic buttons but increased adhesion severity. This shows that impaired CCR2-dependent recruitment coincided with greater adhesion severity and argues against a simple model in which CCR2-dependent recruitment is uniformly adhesion-promoting during adhesion formation; however, the present experiment does not identify the responsible CCR2-expressing cell type or mechanism. Similar protective roles for CCR2-dependent monocyte-derived macrophages have been described in postoperative ileus, where recruited cells restore tissue homeostasis and promote recovery rather than amplify injury [
16]. Together with the chimera data, these findings support donor-derived hematopoietic recruitment into the lesion and associate CCR2-dependent recruitment with adhesion severity, without defining the function of a specific macrophage subset. More recently, a dedicated adhesion study also showed that monocyte-derived peritoneal macrophages can protect mice against surgery-induced adhesions and that CCR2 deficiency or depletion of CCR2
+ monocytes worsens adhesion formation [
8,
16]. Prior literature raises the hypothesis that monocyte-derived macrophages may restrain excessive fibrin persistence, coordinate clearance of injury-associated debris, and contribute to resolution; these functions were not directly demonstrated by the present experiments.
However, the study assessed selected postoperative time points rather than a complete time course. Therefore, the data do not directly demonstrate temporally separated resident and infiltrating macrophage functions. The reduction in adhesion after depletion of macrophage-rich peritoneal and mesenteric compartments is compatible with an early effect of clodronate-sensitive cells, while the day-3 chimera and CCR2 findings indicate that donor-derived hematopoietic cells are present during the postoperative response. Definitive temporal relationships will require serial analyses at additional time points, such as postoperative days 1, 3, 5, and 7, using markers that resolve resident, monocyte-derived, and other myeloid populations. The present experiments also do not link donor-derived F4/80+ cells to the CCR2-dependent phenotype at a single-cell level.
Our cytokine data support this interpretation by showing that the early inflammatory response after surgery is only partially dependent on CCR2. IL1β was strongly induced in ischemic buttons and was partially sensitive to macrophage depletion, consistent with established work in postoperative ileus showing that IL-1 signaling is a central driver of postoperative neuroimmune activation [
18]. Because enteric glia respond to IL-1β with production of IL-6 and monocyte-attracting signals in postoperative ileus models, the present lesion data raise the possibility that analogous stromal or mesothelial amplification loops may operate in the peritoneum, even though this was not directly tested here [
18]. However, the study relied primarily on mRNA expression and did not include ELISA, Western blot, or other protein-level validation. Therefore, the observed changes in IL1B, TNF, IL6, ARG1, MRC1, and IL10 transcripts cannot establish corresponding changes in protein abundance, secretion, or functional activity.
The results also fit with the broader concept that recruited monocyte-derived macrophages can generate regulatory mediators while still worsening postoperative pathology. Stein et al. showed that leukocyte-derived IL-10, chiefly from monocyte-derived macrophages, aggravates postoperative ileus by promoting chemokine expression and neutrophil extravasation rather than by suppressing inflammation in a straightforward manner [
17]. Of particular interest is the pattern observed for Arg1, MR1, and IL10, which were increased in injured tissue at day 3 and were reduced in CCR2-deficient lesions. In the present study, this pattern demonstrates an association between intact CCR2 signaling/recruitment and higher whole-tissue expression of wound-healing-associated transcripts at day 3. It does not establish the cellular source of these transcripts, their protein-level activity, or a reparative, anti-inflammatory or pro-resolving phenotype of CCR2-dependent recruited macrophages. Such a phenotype remains a plausible hypothesis for future cell-specific investigation [
22,
27].
These findings also help reconcile apparently conflicting literature on macrophages in adhesion formation. Some studies have emphasized macrophage-driven profibrotic signaling and the ability of macrophages to induce fibroblast adhesion phenotypes, whereas others have shown that monocyte-derived macrophages can be protective depending on timing, localization, and polarization state [
22,
26,
28]. Rather than supporting a definitive temporal and functional dichotomy, the present work identifies two divergent experimental phenotypes: clodronate-sensitive, macrophage-rich compartment depletion reduced adhesions, whereas global CCR2 deficiency increased adhesions and altered lesional F4/80
+ cell accumulation and transcript expression. Whether these phenotypes reflect distinct resident and infiltrating macrophage functions requires cell-specific lineage tracing and functional validation.
Several limitations should be considered. First, clodronate liposomes are not selective for resident macrophages and may affect other phagocytic cells. Second, F4/80 staining alone does not distinguish resident macrophages, recruited monocytes, monocyte-derived macrophages, and other myeloid populations. Third, the chimera experiments require confirmation of reconstitution and cannot exclude persistence of radioresistant resident cells. Fourth, the CCR2-deficient model is global and therefore does not establish macrophage-specific causality. Fifth, the study relies primarily on mRNA expression without protein-level validation. Sixth, lesional F4/80+ cell content was assessed at limited postoperative time points, preventing a definitive temporal analysis. Seventh, only male mice were studied, limiting generalizability across sex. Finally, the ischemic button model is valuable for mechanistic investigation but does not reproduce all aspects of human postoperative adhesion disease. In addition, whole-tissue qPCR cannot assign transcript changes to recruited F4/80+ cells, and expression of Arg1, MRC1/MR1, or IL10 alone is not proof of a pro-resolving cellular function.