Published online Oct 21, 2026. doi: 10.3748/wjg.119719
Revised: March 16, 2026
Accepted: May 21, 2026
Published online: October 21, 2026
Processing time: 217 Days and 16.7 Hours
Gastrointestinal perforation is a rare but potentially life-threatening complication in cancer patients, often occurring in a complex clinical setting characterized by advanced disease, comorbidities, and ongoing systemic treatments. Despite its clinical relevance, data describing the characteristics, prognosis, and underlying causes of gastrointestinal perforation in oncologic populations remain limited, particularly for events not clearly attributable to tumor involvement or treatment-related factors. We hypothesized that gastrointestinal perforations in cancer pa
To characterize cancer patients with gastrointestinal perforation and to estimate overall survival (OS) and associated prognostic factors.
This single-center retrospective observational study included adult cancer patients who experienced gastroin
Among 72143 cancer patients, 119 (0.16%) experienced gastrointestinal perforation: 80 (67.2%) cancer-related, 28 (23.6%) cancer-unrelated, and 11 (9.2%) of unknown cause. Colorectal cancer predominated in cancer-related cases (41.3%), while breast (17.9%) and lung cancer (14.3%) in cancer-unrelated perforations; kidney and lung cancers in unknown-cause perforations (27.3% each). The colon (27.5%) and small intestine (23.8%) were the most common perforation sites in cancer-related cases, rectosigmoid (60.7%) in cancer-unrelated cases, and colon (45.5%) in unknown-cause cases. Patients with perforation of unknown cause showed a higher prevalence of comorbidities, particularly arterial hypertension (63.6%). Median OS was 12.1 months, with 30-day mortality of 20.5%. Hyperten
Gastrointestinal perforation is an uncommon but severe event in cancer patients, with a distinct subset of cases occurring without an identifiable cause and with a prognosis influenced by comorbidities and metastatic burden.
Core Tip: In this single-center retrospective study, a small but clinically relevant subset of gastrointestinal perforations occurred without an identifiable cause. Patients with perforation of unknown origin showed distinctive clinical and pathological features compared with cancer-related and cancer-unrelated cases, including a higher burden of comorbidities, particularly arterial hypertension, a different distribution of primary tumors (lung and kidney cancers), and preferential involvement of the colon and small intestine. Although outcomes appeared broadly comparable across groups, these findings suggest that patient-related factors may contribute to spontaneous perforation, highlighting an under-recognized clinical scenario in oncology practice.
- Citation: Monti M, Ceredi B, Paganelli N, Vespignani R, Andalò A, De Angelis P, Gentili N, Massa I, Roncadori A, Danesi V, Balzi W. Alarm from the peritoneum: Gastrointestinal perforations in cancer patients, with a focus on perforations of unknown origin. World J Gastroenterol 2026; 32(39): 119719
- URL: https://www.wjgnet.com/1007-9327/full/v32/i39/119719.htm
- DOI: https://dx.doi.org/10.3748/wjg.119719
Perforation of the gastrointestinal tract is an abdominal emergency requiring prompt diagnosis and treatment. Unex
Gastrointestinal perforation can result from numerous conditions, including malignancies. These may cause intestinal obstruction and bowel distension, while lymphoma treated with chemotherapy can lead to bowel wall necrosis. Other causes include diverticulitis, appendicitis, peptic ulcer disease, inflammatory bowel disease, drug-induced ulcers, and invasive procedures. The possibility of perforation should also be considered in patients with chronic constipation or those who have been bedridden for prolonged periods. Awareness of these risk factors is essential for early diagnosis.
Computed tomography scanning can often, though not consistently, localize the site of perforation by identifying extraluminal gas, contrast material leakage, or discontinuity of the gastrointestinal tract[1]. Management of acute abdo
Furthermore, overall survival (OS) was estimated, and clinical and oncologic factors associated with poorer or improved survival were explored.
This study was a single-center, retrospective observational analysis conducted among cancer patients with gastrointes
The eligible population included all adult cancer patients who experienced gastrointestinal perforation between October 1, 2007, and October 1, 2023. Potentially eligible patients were identified through a structured search of clinical documents, including clinical notes, medical and radiology reports, and discharge letters. Specifically, the search strategy included terms related to gastrointestinal perforation, such as “free air in the abdomen” and “perforation”, to identify patients with a documented history of abdominal perforation. Oncologists manually reviewed all identified cases to confirm eligibility and classify perforations into three etiologic categories: Cancer-related, cancer-unrelated, or of unknown cause. The date of gastrointestinal perforation was defined as the index date. Patients were followed from the index date until death, the last documented follow-up, or the end of the observational period (August 2024), whichever occurred first. Mortality data were obtained and verified from the Emilia-Romagna region’s mortality register database.
The eligible population and patient information were retrospectively retrieved from the electronic health records (EHR; CCE Log80 2.6, Log80 S.r.l.), which are routinely used in clinical practice. The EHR system contains data on clinical visits, routine laboratory tests, disease assessments, administered therapies, and diagnostic and therapeutic procedures per
Demographic, oncologic, and clinical characteristics were collected, including age and sex; primary tumour site; meta
Data extraction was followed by data cleaning and complemented by a manual review of unstructured data to achieve high data completeness.
Patients were retrospectively classified into three groups: Cancer-related, cancer-unrelated, or of unknown cause based on the presumed etiology of gastrointestinal perforation. For each patient, clinical records were systematically reviewed by a physician, integrating medical history, imaging findings, treatment exposure, procedural history, and, when available, surgical and histopathological reports. Predefined etiological variables, including tumor site perforation, post-chemotherapy perforation, intestinal obstruction, diverticulitis, iatrogenic perforations, and gastric ulcer, were assessed and coded as dummy variables (0 = absent, 1 = present).
Cancer-related perforations included events attributable to intestinal obstruction caused by tumour burden, tumour site perforation, and post-chemotherapy perforation. Specifically, perforations were considered chemotherapy-related when occurring within 7 days of the last administration of systemic treatment, particularly in patients receiving drugs known to be associated with increased perforation risk (e.g., antiangiogenic agents). Evidence of bowel obstruction, perforation adjacent to the tumour, peritoneal carcinomatosis, or histological confirmation of neoplastic infiltration supported classification as cancer-related.
Cancer-unrelated perforations comprised perforations associated with diverticulitis, gastric ulcer disease and iatro
Perforations were classified as of unknown cause when no predefined etiological factors were identified after the structured review and all assessed variables were coded as absent.
OS was defined as the time from the date of perforation (i.e., index date) to death from any cause or last follow-up, whichever occurred first.
Time-to-surgery was defined as the time interval between gastrointestinal perforation and surgical intervention. In practice, patients without a recorded surgery date were censored at the date of death or the last follow-up, whichever occurred first.
The time from chemotherapy to gastrointestinal perforation was calculated only in patients who received chemothe
Descriptive statistics were reported for each collected variable. More precisely, continuous variables were summarized using mean ± SD or median [interquartile range (IQR)], as appropriate, while categorical variables were reported as absolute n (%). Patient characteristics were described according to perforation etiology (cancer-related, cancer-unrelated, or unknown cause). No formal hypothesis testing on group differences in patients’ characteristics was planned, given the descriptive and exploratory nature of the study.
Survival distributions were estimated using the Kaplan-Meier method and compared across perforation groups using the log-rank test. Median OS and survival probabilities at predefined time points (30-day survival) were reported with corresponding 95% confidence intervals (95%CIs).
Furthermore, the association between clinical and treatment-related variables and OS was explored using the Cox proportional hazards regression model. Practically, a set of demographic and clinical characteristics was initially eva
Moreover, time-to-event analyses were also used to evaluate: (1) The interval between gastrointestinal perforation and surgical intervention; and (2) The timespan between the last chemotherapy administration and the diagnosis of gastro
Missing data were considered to be completely at random and, consequently, handled using an available-case app
Statistical analysis were performed by a biomedical statistician using R statistical software (www.r-project.org) version 4.4.2.
Among 72143 seen or treated at our cancer centre during the study period, 119 (0.16%) experienced a gastrointestinal perforation and were analyzed. Of these, 108 (90.8%) cases had an identifiable cause of perforation, while 11 (9.2%) cases were classified as having an unknown cause (Figure 1). Patients with a known cause of perforation were further categorized into cancer-related (n = 80, 74.1%) and cancer-unrelated groups (n = 28; 25.9%).
The average follow-up after gastrointestinal perforation was 24.0 months, whereas the median was 7.2 (IQR: 1.5-39.0) months.
The demographic and clinical characteristics of the patients are shown in Table 1. The mean age at cancer diagnosis was slightly lower in the cancer-related perforation group than in the other two groups. Male patients were slightly more prevalent in all perforation categories. In the cancer-related perforation group, the most frequent primary malignancy was colorectal cancer (41.3%). In contrast, breast cancer (17.9%) and lung cancer (14.3%) were among the most common primary tumors in the cancer-unrelated perforation group. In patients with perforation of unknown cause, kidney and lung cancers (27.3% each) were the most frequently observed primary malignancies.
| Characteristics | Cancer-related cause (n = 80) | Cancer-unrelated cause (n = 28) | Unknown cause (n = 11) |
| Age at diagnosis (year) | 63.0 ± 12.22 | 66.7 ± 9.73 | 65.9 ± 8.99 |
| Sex | |||
| Female | 38 (47.5) | 12 (42.9) | 4 (36.4) |
| Male | 42 (52.5) | 16 (57.1) | 7 (63.6) |
| Primary tumor site | |||
| Colon | 33 (41.3) | 3 (10.7) | 1 (9.1) |
| Hematological cancer | 3 (3.8) | 3 (10.7) | 1 (9.1) |
| Breast | 0 (0.0) | 5 (17.9) | 1 (9.1) |
| Pancreas | 7 (8.8) | 3 (10.7) | 0 (0.0) |
| Lung | 0 (0.0) | 4 (14.3) | 3 (27.3) |
| Kidney | 0 (0.0) | 2 (7.1) | 3 (27.3) |
| Rectum | 9 (11.3) | 1 (3.6) | 1 (9.1) |
| Multiple sites | 1 (1.3) | 0 (0.0) | 0 (0.0) |
| Stomach | 13 (16.3) | 2 (7.1) | 0 (0.0) |
| Other sites | 14 (17.5) | 5 (17.9) | 1 (9.1) |
| Metastatic disease | |||
| No | 24 (30.0) | 9 (32.1) | 4 (36.4) |
| Yes | 55 (69.8) | 19 (67.9) | 7 (63.6) |
| Unknown | 1 (1.3) | 0 (0.0) | 0 (0.0) |
| Number of metastatic sites | |||
| 1 | 33 (60.0) | 13 (68.4) | 3 (42.9) |
| 2 | 17 (30.9) | 2 (10.5) | 3 (42.9) |
| 3 | 5 (9.1) | 3 (15.8) | 0 (0.0) |
| 4 | 0 (0.0) | 1 (5.3) | 1 (14.3) |
| Site of metastases | |||
| Lung | 13 (16.3) | 3 (10.7) | 3 (27.3) |
| Lymph nodes | 10 (12.5) | 7 (25.0) | 3 (27.3) |
| Bone | 2 (2.5) | 9 (32.1) | 3 (27.3) |
| Peritoneum | 27 (33.8) | 2 (7.1) | 0 (0.0) |
| Brain | 3 (3.8) | 1 (3.6) | 1 (9.1) |
| Adrenal gland | 0 (0.0) | 0 (0.0) | 1 (9.1) |
| Skin | 1 (1.3) | 0 (0.0) | 0 (0.0) |
| Stomach | 2 (2.5) | 1 (3.6) | 0 (0.0) |
| Liver | 19 (23.8) | 3 (10.7) | 2 (18.2) |
| Ovary | 1 (1.3) | 0 (0.0) | 0 (0.0) |
| Uterus | 1 (1.3) | 0 (0.0) | 0 (0.0) |
| Pancreas | 1 (1.3) | 0 (0.0) | 0 (0.0) |
| Kidney | 1 (1.3) | 1 (3.6) | 0 (0.0) |
| Colon | 0 (0.0) | 1 (3.6) | 0 (0.0) |
| Muscle | 1 (1.3) | 1 (3.6) | 0 (0.0) |
| Site of perforation | |||
| Gallbladder | 0 (0.0) | 1 (3.6) | 0 (0.0) |
| Colon | 22 (27.5) | 2 (7.1) | 5 (45.5) |
| Small intestine | 19 (23.8) | 3 (10.7) | 3 (27.3) |
| Rectosigmoid | 16 (20.0) | 17 (60.7) | 1 (9.1) |
| Unknown | 14 (17.5) | 4 (14.3) | 2 (18.2) |
| Stomach/cardia | 8 (10.0) | 1 (3.6) | 0 (0.0) |
| Bladder | 1 (1.3) | 0 (0.0) | 0 (0.0) |
| Surgery | |||
| No | 30 (37.5) | 9 (32.1) | 3 (27.3) |
| Yes | 50 (62.5) | 19 (67.9) | 7 (63.6) |
| Unknown | 0 (0.0) | 0 (0.0) | 1 (9.1) |
| Surgical technique | |||
| Resection + stoma | 21 (42.0) | 7 (36.8) | 3 (42.9) |
| Stoma only | 2 (4.0) | 1 (5.3) | 0 (0.0) |
| Resection | 25 (50.0) | 8 (42.1) | 4 (57.1) |
| Drainage only | 1 (2.0) | 1 (5.3) | 0 (0.0) |
| Others | 1 (2.0) | 2 (10.5) | 0 (0.0) |
| Time to surgery (day) | 1.0 (1-10) | 1.5 (1-22) | 1.0 (10-23) |
| Comorbidities | |||
| No comorbidities | 44 (55.0) | 10 (35.7) | 2 (18.2) |
| Inflammatory bowel disease | 1 (1.3) | 1 (3.6) | 0 (0.0) |
| Arterial hypertension | 20 (25.0) | 9 (32.1) | 7 (63.6) |
| Ischemic heart disease | 1 (1.3) | 0 (0.0) | 2 (18.2) |
| Renal insufficiency | 2 (2.5) | 1 (3.6) | 0 (0.0) |
| Rheumatologic disease | 1 (1.3) | 1 (3.6) | 0 (0.0) |
| Metabolic syndrome | 7 (8.8) | 4 (14.3) | 1 (9.1) |
| Aortic aneurysm | 2 (2.5) | 0 (0.0) | 0 (0.0) |
| COPD | 4 (5.0) | 1 (3.6) | 0 (0.0) |
| Atrial fibrillation | 3 (3.8) | 1 (3.6) | 0 (0.0) |
| Hypothyroidism | 5 (6.3) | 2 (7.1) | 1 (9.1) |
| Active infection | |||
| No | 69 (86.3) | 24 (85.7) | 9 (81.8) |
| Yes | 1 (1.3) | 1 (3.6) | 0 (0.0) |
| Unknown | 10 (12.5) | 3 (10.7) | 2 (18.2) |
| Corticosteroid therapy within 7 days before perforation | |||
| No | 18 (22.5) | 7 (25.0) | 3 (27.3) |
| Yes | 22 (27.5) | 13 (46.4) | 5 (45.5) |
| Unknown | 40 (50.0) | 8 (28.6) | 3 (27.3) |
| Chemotherapy | |||
| With known perforation risk | 20 (25.0) | 9 (32.1) | 4 (36.4) |
| Without known perforation risk | 26 (32.5) | 9 (32.1) | 5 (45.5) |
| No chemotherapy | 34 (42.5) | 10 (35.7) | 2 (18.2) |
| Antibiotic therapy within 7 days before perforation | |||
| No | 33 (41.3) | 7 (25.0) | 5 (45.5) |
| Yes | 2 (2.5) | 7 (25.0) | 0 (0.0) |
| Unknown | 45 (56.3) | 14 (50.0) | 6 (54.5) |
The proportion of patients with metastatic disease was similar across the three groups, with approximately two-thirds presenting with metastases. In the cancer-related perforation group, the peritoneum was the most common site of metastasis (33.8%), whereas bone metastases were most prevalent in the cancer-unrelated group (32.1%). Among patients with perforation of unknown origin, metastatic sites were mainly distributed among the lungs, lymph nodes, and bones (each 27.3%).
Regarding the anatomical site of perforation, the colon (27.5%) and small intestine (23.8%) were the most frequently involved sites in the cancer-related group. In comparison, rectosigmoid perforation was predominant in the cancer-unrelated group (60.7%). Among patients with perforation of unknown cause, the colon was the most common site of perforation (45.5%).
Overall, the majority of patients underwent surgical management following gastrointestinal perforation, with similar rates across the three groups (62.5% in the cancer-related group, 67.9% in the cancer-unrelated group, and 63.6% in the unknown-cause group). Surgical bowel resection with or without stoma creation represented the most common operative approach in all three groups. Notably, only 18.2% of patients with perforation of unknown cause had no documented comorbidities, compared with 55.0% of patients in the cancer-related perforation group.
Corticosteroid therapy within the seven days preceding perforation was relatively common, particularly in the cancer-unrelated (46.4%) and unknown-cause (45.5%) groups. Chemotherapy administration, including regimens not tradi
OS after gastrointestinal perforation was similar among the three groups (Figure 2). All groups showed a marked early mortality following perforation, with survival curves over time largely overlapping. More precisely, the proportion of survivors 30 days after cancer-related perforation was 80.9% (95%CI: 72.6%-90.1%). Similarly, in the cancer-unrelated perforation group, the estimated 30-day survival was 78.6% (95%CI: 64.8%-95.3%). Notably, in the unknown origin perforation group, the proportion of 30-day survivors was estimated at 72.7% (95%CI: 50.6%-100.0%). The median OS was comparable among the three groups (Figure 2), and no statistically significant differences were observed (log-rank test P = 0.954). Specifically, among patients who experience cancer-related perforation, the median OS was 12.1 (95%CI: 3.5-28.4) months. Similarly, in the cancer-unrelated perforation group, the estimated median OS was 11.2 months (95%CI: 3.8-38.1), whereas in the unknown origin of perforation group, the median OS was 17.2 (95%CI: 2.6-not reached) months.
Prognostic factors for survival were explored using a forest plot analysis (Figure 3). Arterial hypertension (P = 0.012), bone metastases (P < 0.001), peritoneal carcinomatosis (P < 0.001), and liver metastases (P < 0.001) were significantly associated with worse prognosis. Conversely, patients with colorectal (P < 0.001), breast (P < 0.001), or hematological malignancies (P = 0.025) showed improved survival (Figure 3).
The time interval between the last chemotherapy and the diagnosis of gastrointestinal perforation was short and comparable across all three groups (Figure 4A). Regarding surgical timing, most patients underwent surgery within the first or second day after diagnosis (Figure 4B).
We present a single-center, retrospective analysis of gastrointestinal perforations in onco-hematological patients occur
Importantly, our findings confirm that gastrointestinal perforation may occur unexpectedly and without a clear underlying cause in clinical oncology practice.
Following perforation, patients typically present with acute abdominal pain; however, if diagnosis and treatment are delayed, the clinical course may rapidly progress to septic shock and multiorgan failure[3]. The clinical significance of peritonitis was already recognized by Hippocrates, who described the so-called Hippocratic facies, which remains a relevant predictive indicator of severe intra-abdominal pathology.
Several older and more recent retrospective studies have investigated gastrointestinal perforation in cancer patients, primarily focusing on clinical characteristics, outcomes, and mortality risk[4-6]. However, these studies are not directly comparable due to differences in study design, cancer patient populations, and perforation sites. In the present study, the incidence of gastrointestinal perforation was estimated at approximately 0.16% in the entire oncologic patient cohort. In contrast, several previously did not report a denominator[4,7], while Hapani et al[8] reported an incidence of 0.9% in bevacizumab-treated patients, using a drug-specific trial population as the denominator. Similarly, Mazepa et al[5] reported a very low incidence of approximately 0.03% among patients receiving chemotherapy, based on a treatment-session denominator. Previous studies also adopted different inclusion criteria and definitions of perforation. Torosian and Turnbull[4] excluded instrumental perforations, anastomotic leaks, primary perforating adenocarcinoma, and obstruction-related perforations, defining spontaneous perforation as events occurring during chemotherapy and/or corticosteroid therapy without specifying the interval between treatment and perforation. Mazepa et al[5] included only patients with intraoperative gastroduodenal perforation and defined active treatment as anticancer therapy administered within 60 days before perforation. Maeda et al[6] analyzed patients undergoing emergency surgery for acute abdomen within 30 days after anticancer drugs administration. In the study by Mazepa et al[5], more than half of the patients had metastatic disease, whereas the extent of disease was not reported in the studies by Maeda et al[6] and Torosian and Turnbull[4]. Conversely, our study included all gastrointestinal perforations in an unselected oncologic population and classified them by presumed etiology, showing a predominance of cancer-related events and identifying a subgroup without a clear cause. The anatomical distribution of perforations differed across studies. Mazepa et al[5] included only gastroduodenal perforations, whereas Torosian and Turnbull[4] reported a predominance of small intestine (45%) and colonic perforations (55%). Maeda et al[6] reported gastrointestinal perforations involving different segments of the gastrointestinal tract, including the stomach, small intestine, colon, and appendix, indicating a heterogeneous anatomical distribution. In contrast, gastric perforations represented only a small proportion of cases (10%) in our cohort and were mainly observed in the cancer-related group. Rectosigmoid perforation predominated in the non-cancer-related group (60.7%), largely associated with diverticulitis. These differences highlight the heterogeneity of perforation patterns across oncologic populations and reflect the different clinical settings and inclusion criteria of previous studies. Outcomes also varied substantially across studies. Mazepa et al[5] reported a high mortality rate among oncologically treated patients with gastroduodenal perforation, with a 30-day mortality of 55.6%, regardless of recent chemotherapy exposure. In Maeda et al[6], 30-day mortality was 26%, whereas the operative mortality reported by Torosian and Turnbull[4] was 53%. In our cohort, the 30-day mortality was 20.5%, slightly lower than that reported by Maeda et al[6]. Differences in mortality across these studies are likely due to differences in patient selection and clinical settings. Interestingly, the estimated proportion of 30-day survivors was 80.1%, 78.6% and 72.7% for cancer-related perforations, cancer-unrelated perforations and the unknown origin of the perforation group, respectively. Mortality and morbidity associated with spontaneous perforation are likely exacerbated by malnutrition, pancytopenia, and immunosuppression commonly observed in patients undergoing chemotherapy.
In terms of prognostic factors, Maeda et al[6] identified older age, poor performance status, and low serum albumin as predictors of in-hospital death after emergency surgery during chemotherapy. In contrast, Mazepa et al[5] found age ≥ 65 years to be the only independent predictor of 30-day mortality, and Torosian and Turnbull[4] did not identify clear prognostic factors. Our analysis identified arterial hypertension and the presence of bone, peritoneal, or hepatic meta
The role of chemotherapy as a contributing factor to gastrointestinal perforation remains controversial. In the study by Mazepa et al[5], only 35.5% of patients received chemotherapy, whereas all patients in the cohort reported by Maeda et al[6] were undergoing chemotherapy at the time of perforation. Torosian and Turnbull[4] reported that 76.6% of patients received corticosteroids alone or in combination with chemotherapy. In our cohort, fewer than half of patients were not receiving chemotherapy at the time of perforation, with relevant differences among the three groups (42.5%, 35.7%, and 18.2% in the cancer-related, cancer-unrelated, and unknown-cause groups, respectively). Notably, the time interval between the last chemotherapy administration and the perforation diagnosis was short and comparable across all groups, suggesting a temporal association between systemic treatment and perforation onset. The potential role of concomitant medications has also been explored[9,10]. Non-steroidal anti-inflammatory drugs and corticosteroids have both been implicated as risk factors for gastrointestinal perforation. The association with corticosteroid therapy was first reported by Beck et al[11] in 1950. Although the exact mechanism remains unclear, steroids are thought to impair the intestinal mucosal barrier, possibly through inhibition of prostacyclin synthesis. Although corticosteroid use was more frequent (37.8%), no correlation with perforations was observed[5]. In our study, corticosteroid use in the week preceding per
The literature indicates an increased risk of gastrointestinal perforation in patients treated with biologic and antiangiogenic agents, particularly bevacizumab, aflibercept, ramucirumab and regorafenib[8,12-14]. In contrast, the association between “classic” cytotoxic chemotherapy and perforation is less clear. While case reports describe perforation events, a consistent increase above baseline risk has not been uniformly demonstrated. Potential mechanisms include tumor infiltration, rapid tumor necrosis, severe mucositis, pre-existing bowel disease, and synergistic effects with radiotherapy, especially in the upper gastrointestinal tract[15,16]. In intestinal lymphomas, rapid tumor lysis following chemotherapy is frequently implicated as a primary mechanism[17]. Furthermore, severe neutropenia and neutropenic enterocolitis represent particularly high-risk conditions, as mucosal injury and ischemic necrosis may lead to single or multiple perforations, especially in pediatric patients or those with leukemia[18].
While perforations related to chemotherapy or targeted agents may be clinically explicable in cancer-related cases, perforations of unknown origin remain more difficult to interpret. Early reports from the 1970s already described spontaneous gastrointestinal perforation in oncology patients. Lundy et al[7] reported 36 cases, of which five perforations occurred in the absence of tumor involvement at the perforation site. In such cases, perforation is considered sponta
Subsequent studies, including the experience from Memorial Sloan-Kettering Cancer Center described the absence of tumour infiltration in nearly half of surgical specimens[4]. More recently, spontaneous intestinal perforation has been described as low in patients with malignant lymphoma treated with chemotherapy, although its true incidence remains unknown[2,19]. In our cohort, 11 patients were classified as having perforation of unknown origin. We preferred to use the term perforation of unknown origin rather than spontaneous perforation, because only surgery or autopsy could definitively rule out the presence of cancer at the perforation site. The absence of cancer was confirmed by histological examination in only 7 of the 11 patients; therefore, these cases could be considered true spontaneous perforations. In the remaining four cases, potential causes of perforation were excluded based on the available clinical information. For this reason, we considered the term unknown origin more appropriate than spontaneous perforation.
Despite the inability to clearly identify the etiopathogenetic mechanisms of perforation, particularly in patients with perforation of unknown origin, our data suggest that patient-related factors may play a relevant role. Indeed, only two patients (18.2%) in the unknown-cause group had no comorbidities, and arterial hypertension was the most frequent comorbidity (63.3%).
Gastrointestinal perforations during active oncologic treatment represent a particularly challenging clinical scenario, especially in elderly patients, those with advanced disease, or those with peritoneal carcinomatosis. Despite these con
This study has several limitations. First, its retrospective design may introduce selection and information bias. Second, the study population was heterogeneous with respect to tumor type and treatment regimens. Third, the subgroup of patients with perforation of unknown cause was relatively small (n = 11), which limits statistical power and precludes definitive conclusions about this specific cohort. Fourth, not all cases were confirmed by surgical or histopathological findings, and detailed data on postoperative complications in patients who underwent surgery were not available. Finally, the etiopathogenetic mechanisms underlying perforations of an unknown origin could not be determined. Furthermore, from a methodological point of view, although several demographic and clinical variables were explored during the model-developing phase, the final multivariable Cox regression included only variables retained after a data-driven selection procedure (i.e., based on AIC). Important prognostic factors in oncology (e.g., performance status, nutritional status) were not consistently available in the EHR and therefore could not be incorporated into the analysis. Consequently, the observed associations should be interpreted cautiously, as residual confounding from unmeasured clinical factors cannot be excluded.
Despite these limitations, our study has notable strengths. It represents a large analysis of gastrointestinal perforation in a broad oncologic population. Importantly, the inclusion of an unselected cohort of cancer patients identified from the entire population accessing our institution over a long observation period reflects real-world clinical practice and may enhance the generalisability of our findings to similar oncology settings. Additionally, it expands current knowledge on prognostic factors beyond those previously reported[5,6]. These findings may help identify patients most suitable for surgical management and constitute one of the largest single-center experiences of spontaneous perforation after the study by Torosian and Turnbull[4] and Lundy et al[7]. Although the incidence of perforation is low (and even lower for those of unknown origin), we believe it is important to remain vigilant even in apparently “stable” patients (e.g., those with arterial hypertension, bone metastases, or liver metastases). Furthermore, maintaining regular bowel movements may represent good clinical practice.
Arterial hypertension, bone metastases, peritoneal carcinomatosis and liver metastases are associated with worse prog
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