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Biomedical subjects

Giovanni B Doglietto

Publications and source records attributed to Giovanni B Doglietto.

5 recordsLinked to original sources

Neoplastic mesorectal microfoci (MMF) following neoadjuvant chemoradiotherapy: clinical and prognostic implications.

BACKGROUND: Neoplastic microfoci have frequently been found in the mesorectum, with poor outcome. In this study, incidence and clinical significance of mesorectal microfoci (MMF) were analyzed in patients operated on for rectal cancer following neoadjuvant chemoradiation. METHODS: A case series of 68 patients with extraperitoneal rectal cancer treated with neoadjuvant chemoradiation and surgery (including total mesorectal excision) were investigated for presence of neoplastic MMF. RESULTS: MMF were found in 26 cases (38.2%). Increasing incidence of microfoci was statistically related to pathologic involvement of the bowel wall (P = 0.0006), Mandard's tumor regression grading (P = 0.0006), and pathologic neoplastic mesorectal involvement (P < 0.00001). None of the nine patients with complete tumor disappearance displayed both microfoci and lymph node metastasis. Only one local recurrence developed in a patient with multiple MMF. One out of nine pT0 or TRG1 patients (11.1%) had distant metastases compared with 15 out of 59 pT1-4 or TRG2-5 (25.4%, P = 0.70). CONCLUSIONS: A remarkable incidence of MMF was found following chemoradiation. However, when this therapy induced complete regression of primary tumor (pT0-TRG1), we found that node metastases and neoplastic MMF also disappeared. These features should be confirmed to assess the impact of these microfoci in treatment decision making in rectal cancers.

Adenocarcinoma↗

Neoplastic mesorectal microfoci (MMF) following neoadjuvant chemoradiotherapy: clinical and prognostic implications.

BACKGROUND: Neoplastic microfoci have frequently been found in the mesorectum, with poor outcome. In this study, incidence and clinical significance of mesorectal microfoci (MMF) were analyzed in patients operated upon for rectal cancer following neoadjuvant chemoradiation. METHODS: A case series of 68 patients with extraperitoneal rectal cancer, treated with neoadjuvant chemoradiation and surgery (including total mesorectal excision), was investigated for the presence of neoplastic MMF. RESULTS: Mesorectal microfoci were found in 26 cases (38.2%). Increasing incidence of microfoci was statistically related to pathologic involvement of bowel wall (P = 0.0006), Mandard's tumor regression grading (P = 0.0006) and pathologic neoplastic mesorectal involvement (P < 0.00001). None of the nine patients with complete tumor disappearance displayed both microfoci and lymph node metastasis. Only one local recurrence developed in a patient with multiple MMF. Out of 9 pT0 or TRG1 patients, 1 (11.1%) had distant metastases, compared to 15 out of 59 pT1-4 or TRG2-5 (25.4%, P = 0.70). CONCLUSIONS: A remarkable incidence of MMF was found following chemoradiation. However, when this therapy induces complete regression of primary tumor (pT0-TRG1), node metastases and neoplastic MMF could also disappear, as shown in our cases. These features should be confirmed because they could significantly impact the treatment decision-making of rectal cancers.

Antineoplastic Combined Chemotherapy Protocols↗

Sacral neuromodulation in treatment of fecal incontinence following anterior resection and chemoradiation for rectal cancer.

PURPOSE: Fecal incontinence may occur in patients who have undergone anterior resection for rectal cancer without presenting sphincter lesions. Chemoradiation may contribute to disrupting continence mechanisms. Treatment is controversial. Assessment of fecal incontinence in patients who agreed to integrate treatment for rectal cancer and treatment with sacral neuromodulation are reported. METHODS: Fecal incontinence following preoperative chemoradiation and anterior resection for rectal cancer was evaluated in four patients. A good response was observed during the percutaneous sacral nerve evaluation test, and so permanent implant of sacral neuromodulation system was performed. Reevaluation was performed at least two months after implant. RESULTS: After device implantation, the mean fecal incontinence scores decreased, and the mean number of incontinence episodes dropped from 12.0 to 2.5 per week (P < 0.05). Permanent implant resulted in a significant improvement in fecal continence in three patients, and incontinence was slightly reduced in the fourth. Manometric parameters agreed with clinical results: maximum and mean resting tone and the squeeze pressure were normal in three patients and reduced in one. In these same three patients, neorectal sensation parameters increased when the preoperative value was normal or below normal and decreased when the preoperative value was higher than normal, whereas in one patient in whom extremely low values were recorded all of the parameters decreased significantly. CONCLUSIONS: Fecal incontinence following anterior resection and neoadjuvant therapy should be carefully evaluated. If a suspected neurogenic pathogenesis is confirmed, sacral neuromodulation may be proposed. If the test results are positive, permanent implant is advisable. Failure of this approach does not exclude the use of other, more aggressive treatment.

Combined Modality Therapy↗

Combined-modality therapy in locally advanced primary rectal cancer.

PURPOSE: Patients with unresectable, locally advanced rectal cancer are reported to have a dismal prognosis. The aim of this study was to analyze the effect of combined-modality therapy on clinical outcome. METHODS: From March 1990 to December 1997, 43 patients (28 males; median age, 62 years; median follow-up, 74 months) with locally advanced (T4 and/or N3) nonmetastatic rectal cancer received external-beam radiation (23.6 plus 23.6 Gy (split course), 8 patients; 45 Gy, 35 patients) plus 5-fluorouracil (96-hour continuous infusion, Days 1-4, at 1,000 mg/m(2)/day) and mitomycin C (10 mg/m, intravenous bolus, Day 1). Concomitant chemotherapy was repeated at the beginning of the second course (split-course group) or in the last week of radiotherapy (continuous-course group). After 6 to 8 weeks, patients were evaluated for surgical resection and intraoperative radiation therapy (10 to 15 Gy). Thereafter, adjuvant chemotherapy (5-fluorouracil plus leucovorin, 6-9 courses) was prescribed. RESULTS: During chemoradiation, 5 patients (11.6 percent) developed Grade 3 to 4 hematologic toxicity. After chemoradiation, 29 patients (67.4 percent) had an objective clinical response (complete response, 2.3 percent; partial response, 65.1 percent). Thirty-eight patients underwent radical surgery (anterior resection, 24 patients; abdominoperineal resection, 14 patients; intraoperative radiation therapy boost on the tumor bed, 19 patients), and 2 patients had partial tumor resection. No perioperative deaths occurred in the patient group. Five-year survival and local control rates were 59.9 and 69.1 percent, respectively. Distant metastasis occurred in 44.2 percent of patients. Statistically significant relationships between intraoperative radiation therapy and local control (P = 0.0104), radical surgery and survival (P = 0.0120), and adjuvant chemotherapy and disease-free survival (P = 0.0112) were observed. CONCLUSIONS: Our data suggest that combined-modality therapy was relatively well tolerated and resulted in good local control and survival. With regard to the impact of surgical resection on survival, additional studies aimed at improving the local response rate are necessary, whereas the positive impact of intraoperative radiotherapy on local control appears to justify the inclusion of this therapeutic modality in prospective multi-institutional trials.

Adult↗