Background:
Hand and wrist infections may cause varying degrees of morbidity requiring antibiotic therapy of variable duration and often operative intervention. Peripherally inserted central line catheters (PICCs) are placed when an extended course of intravenous antibiotics is anticipated. The present study aims to analyze utilization and impact of PICC placement on the management of hand, wrist, and forearm infections.
Methods:
The PearlDiver Patients Records Database was queried to identify patients who underwent treatment for infection of the hand, wrist, and forearm between 2010 and 2018. Logistic regression analysis was utilized to evaluate the association of patient-related risk factors with PICC utilization, complications, readmissions, and length of stay (LOS).
Results:
A total of 24,665 patients with an upper extremity infection were included in the study. Ultimately, 416 patients required a PICC placement (1.69%). Patients with older age, male gender, certain medical comorbidities, and infection involving deeper structures were more likely to require a PICC. Ninety-day all-cause medical complication rates were significantly higher for the PICC group (19.7% versus 6.7%) compared to those without. Any hospital readmission rates were significantly higher for PICC group at 90 days (28.4% versus 6.3%) and 1 year (35.8% versus 10.9%). Readmission rates remained slightly higher at 1 year for both groups. The PICC group demonstrated significantly longer LOS by 2 days (7.72 days versus 5.14 days).
Conclusion:
While not required for the majority of hand, wrist, and forearm infections, PICC placement is associated with increased medical complications, more frequent hospital readmissions, and longer LOS.
Background:
Capsular contracture is a devastating complication that occurs in patients undergoing implant-based breast reconstruction. Ionizing radiation drives and exacerbates capsular contracture in part by activating cytokines, including transforming growth factor-beta (TGF-β). TGF-β promotes myofibroblast differentiation and proliferation, leading to excessive contractile scar formation. Therefore, targeting the TGF-β pathway may attenuate capsular contracture.
Methods:
A 20,000 small molecule library was screened for anti-TGF-β activity. Structurally diverse anti-TGF-β agents were identified and then tested on primary human capsular fibroblasts. Fibroblasts were irradiated or not, and then treated with both TGF-β and candidate molecules. Resulting cells were then analyzed for myofibroblast activity using myofibroblast markers including alpha-smooth muscle actin, collagen I, Thy1, and periostin, using Western Blot, quantitative real-time polymerase chain reaction, and immunofluorescence.
Results:
Human capsular fibroblasts treated with TGF-β showed a significant increase in alpha-smooth muscle actin, collagen I, and periostin levels (protein and/or mRNA). Interestingly, fibroblasts treated with latent TGF-β and 10 Gy radiation also showed significantly increased levels of myofibroblast markers. Cells that were treated with the novel small molecules showed a significant reduction in myofibroblast activation, even in the presence of radiation.
Conclusions:
Several novel small molecules with anti-TGF-β activity can effectively prevent human capsular fibroblast to myofibroblast differentiation in vitro, even in the presence of radiation. These results highlight novel therapeutic options that may be utilized in the future to prevent radiation-induced capsular contracture.
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