This study assesses the risk of severe hyperlactatemia (defined as lactate levels > 4 mmol/L) in patients undergoing chronic low-dose aspirin (ASP) therapy and estimates the strength of this association. A case-crossover design was employed, in which individuals who experienced the outcome also served as their own controls, with exposure evaluated during a pre-event period. Additionally, a person-day–based analytical approach was used to compare exposure between case and control periods. Among the case group (ASP exposed/unexposed), the distribution was 127/578, while in the control group it was 547/3,968, yielding an odds ratio (OR) of 1.6 (95% CI: 1.29–1.97; z = 4.31; P < 0.0001). The findings suggest a modest association between low-dose aspirin use (100 mg/day) and elevated lactate levels, particularly in its primary indication for secondary prevention of vascular ischemic events. Although the observed risk is relatively low (OR = 1.6), clinical monitoring is advisable, especially when aspirin is co-administered with agents sharing similar toxicological profiles. Incorporating lactate level assessment into therapeutic management plans may enhance patient safety and therapeutic outcomes.
The demand for the development of therapeutic compounds targeting infectious diseases has surged over the past three years, particularly in response to the COVID-19 pandemic. This study aims to compile and analyze the pharmacological effects of metal-based organic complexes against a variety of viral infections, including COVID-19. A systematic review of the existing literature was conducted using databases such as Medline, Scopus, PubMed, and ScienceDirect. The methodology involved data gathering, summarization, and analysis of relevant studies. Antiviral activities are exhibited by metal complexes with various ligands, including hydrazones and thiosemi-carbazones (Pt(II), Pd(II), Ga(III), Pd(II), Co(III), Ni(II), Cu(II)), fluoroquinolones and quinolines (Pd(II)), phenylquinoline, phenylpyridine, tetrahydropyrimidines (Ag(I)), phenanthroline (Cu(II)), and valacyclovir (Cu(II)). Metal complexes containing Zn(II), Co(II), Cu(II), Ni(II), Mg(II), and Mn(II) have shown antiviral properties against DNA viruses, particularly herpes simplex viruses HSV-1 and HSV-2. HIV-inhibiting complexes have been identified with metals such as Au(II), Co(II), Cu(II), Fe(III), La(III), Mg(II), Ni(II), Pd(II), Pt(II), and Ru(II). In light of the persistent global spread of SARS-CoV-2, the development of effective treatments for COVID-19 remains a priority. Investigations into potential therapeutic agents for combating SARS-CoV-2 are focusing on compounds like auranofin and metal complexes of Cu(II), Ni(II), Mn(II), and Zn(II) combined with Coumarin.