Invasive fungal infections (IFIs) are a serious threat to patients with hematological diseases. These infections are characterized by high mortality and lead to significant financial costs for treatment. The most common pathogens of IFIs are Aspergillus spp. and Candida spp., but in recent years, cases of infections caused by rare pathogens have become more frequent. Diagnosis of IFIs and choice of treatment remain challenging due to the nonspecificity of symptoms and the diversity of clinical cases. In this regard, the problem of start time and choice of antifungal therapy remains of current interest. This review briefly describes diagnostic criteria, challenges associated with IFIs diagnosing, provides evidence for empiric and preventive strategies as two early treatment approaches, and examines the impact of therapy initiation on patient outcomes. Treatment of IFIs in hematologic patients should be individualized. At the same time, early administration of therapy with broad-spectrum drugs for febrile neutropenia and parallel diagnostic measures can improve treatment outcomes. There is a lack of current data on the benefits of specific treatment strategies, highlighting the need for further research.
We studied the risk factors, etiology, clinical manifestations, and treatment outcomes of COVID-19-associated invasive candidiasis (COVID-IC) in adult patients admitted to six medical facilities in St. Petersburg. (November 2020–December 2022). In this retrospective study, we included 72 patients with COVID-IC with a median age of 61 years (range 29–96), 51% of whom were women. The predisposing factors for COVID-IC were a central venous catheter (CVC) for more than 10 days (the odds ratio (OR) = 70 [15–309]), abdominal surgical treatment performed in the previous 2 weeks (OR = 8.8 [1.9–40.3]), bacteremia (OR = 10.6 [4.8–23.3]), pulmonary ventilation (OR = 12.9 [5.9–28.4]), and hemodialysis (OR = 11.5 [2.5–50.8]). The signs and symptoms of COVID-IC were non-specific: fever (59%), renal failure (33%), liver failure (23%), and cardiovascular failure (10%). Candida albicans (41%) predominated among the pathogens of the candidemia. The multidrug-resistant Candida species C. auris (23%) and C. glabrata (5%) were also identified. Empirical therapy was used in 21% of COVID-IC patients: azole-93%, echinocandin–7%. The majority of COVID-IC patients (79%) received, after laboratory confirmation of the diagnosis of IC, fluconazole (47%), voriconazole (25%), echinocandin (26%), and amphotericin B (2)%. The 30 days overall survival rate was 45%. The prognosis worsened concomitant bacteremia, hemodialysis, and long-term therapy by systemic glucocorticosteroids (SGCs), bronchial colonization with Candida spp. The survival prognosis was improved by the early change/replacement of CVC (within 24 h), the initiation of empirical therapy, and the use of echinocandin. Conclusions: We highlighted the risk factors that predispose COVID-19 patients to candidiasis and worsen the survival prognosis. Their individual effects in patients with COVID-19 must be well understood to prevent the development of opportunistic co-infections that drastically lower chances of survival.
Objective: to improve the efficiency of differential diagnosis of chronic pulmonary aspergillosis (СPA) based on the assessment of its probability using a discriminant mathematical model. Material and methods. The prospective study included 74 patients with CPA (57% women, median age 53 years) meeting the ERS/ESCMID criteria (2016). The control group consisted of 35 patients with lung diseases without CPA. Clinical and anamnestic data, the results of computed tomography (CT), laboratory and instrumental methods of research were analysed. By means of stepwise discriminant analysis, the model was created in order to differentiate compared groups. Results. The main forms of CPA were simple solitary aspergilloma (n = 30, 40%) and cavitary CPA (n = 21, 28%). On CT scans, in patients with CPA pulmonary emphysema (n = 50, 74%; 95% CI 63–83), bronchiectasis (n = 42, 56%; 95% CI 44–67), pleura thickening (n = 40, 56%; 95% CI 42–65) were detected with a high frequency. The sensitivity and specificity of typical for CPA air sickle symptom were 66.2% and 74.29%, respectively. The diagnostic informativeness of laboratory methods was characterized by high specificity (85–100%), however, it had sensitivity 40–60%. A discriminant model was worked up. It included five variables: mycological confirmation of the diagnosis (р < 0.001), air sickle symptom on CT (p = 0.03), ground glass opacity sympton on CT (p = 0.017), accompanying rheumatological diseases (p = 0,031), positive Aspergillus antigen in bronchoalveolar lavage (p = 0.036). The resulting model of differential diagnosis is statistically significant (F = (5.102) = 27.291; p < 0.001). Conclusion. CT-patterns of CPA include typical (air sickle symptom) and nonspecific (pleura thickening, emphysema, bronchiectasis) changes. Separately taken laboratory indicators and CT-symptoms are not always the determining criteria for diagnosis; an integrated approach is required to make a diagnosis. The proposed model improves the accuracy of differential diagnosis between CPA and nonmycotic lung diseases: increases sensitivity to 82.43%, specificity to 94.28% in comparison with separately analyzed laboratory data and typical CT-pattern of air sickle symptom. As a whole this model allows to classify the CPA and nonmycotic lung disease in 86,23% of cases.
Recently, more attention has been paid to the role of indolamine-2,3-dioxygenase and aryl hydrocarbon receptor in maintaining a balance between immune reactivity and tolerance in various infectious diseases. It is known that the hallmark of COVID-19 is the activation of immuno-inflammatory pathways that induce indoleamine-2,3-dioxygenase, a key enzyme that catalyzes the metabolism of tryptophan along the kynurenine pathway, thereby changing the ratio of kynurenine/tryptophan in the blood serum of patients. An important property of SARS-CoV-2 is its ability to bind to aryl hydrocarbon receptor, which leads to an increase in intracellular expression of indolamine-2,3-dioxygenase and production of kynurenine at the initial stage of infection. Long-term activation of the aryl hydrocarbon receptor increases the production of interleukin-6, enhancing the inflammatory state and counteracting immune tolerance in the later stages of COVID-19. In aggregate, these data point to an important role of indolamine 2,3-dioxygenase and the aryl hydrocarbon receptor in controlling inflammation in patients with COVID-19. Dysregulation of the immune response not only threaten the host’s ability to cope with SARS-CoV-2, but can also predispose a person to secondary bacterial and fungal infections. Among the secondary infections that occur in patients with new coronavirus infection, COVID-19-associated invasive pulmonary aspergillosis is an important cause of death, although many aspects of the disease still remain unresolved. This review presents the current understanding of the importance of tryptophan metabolites and immunological factors in the pathogenesis of COVID-19 and invasive pulmonary aspergillosis.
We present the results of a prospective multicenter study of risk factors, etiology, clinical features, and treatment outcomes for mucormycosis in patients with COVID-19 (COVID-M) in the Russian Federation.The study included 60 adult patients with COVID-M. To analyze risk factors for COVID-M, we conducted a case-control study. The control group included 60 adult patients with COVID-19 without mucormycosis. To analyze the clinical manifestations of COVID-M, we created a control group of hematological patients with mucormycosis examined in 2011–2020.In patients with COVID-19, the risk of developing mucormycosis was significantly increased with diabetes mellitus (OR=49) and overweight (OR=4,75), as well as with the use of high (≥100 mg per day for prednisolone) doses of glucocorticosteroids (OR= 4,762), especially ≥10 days (OR=25,4). The main localization of mucormycosis in patients with COVID-19 was the paranasal sinuses (95%) and the orbit (68%). Involvement of ≥2 organs was identified in 70% of patients. The main causative agents of mucormycosis were Rhizopus arrhizus (43%) and unidentified mucormycetes (36%).90-days overall survival of patients with mucormycosis and COVID-19 – 71%. The stay in the ICU (p=0,01), the use of mechanical ventilation (p=0,0481), the presence of CVC (p=0,049), CNS damage (p=0,016) and ≥ 2 organs (p=0,048) significantly worsened the prognosis of the disease. The best prognosis was in patients who received antifungal therapy (p=0,03875) and surgical treatment (p=0,046).
Critically ill patients with coronavirus disease 2019 (COVID-19) may develop COVID-19-associated pulmonary aspergillosis (CAPA), which impacts their chances of survival. Whether positive bronchoalveolar lavage fluid (BALF) mycological tests can be used as a survival proxy remains unknown.
Objective. To study risk factors, clinical and radiological features and effectiveness of the treatment of invasive aspergillosis (IA) in adult patients with COVID-19 (COVID-IA) in intensive care units (ICU). Materials and Methods. A total of 60 patients with COVID-IA treated in ICU (median age 62 years, male – 58%) were included in this multicenter prospective study. The comparison group included 34 patients with COVID-IA outside the ICU (median age 62 years, male – 68%). ECMM/ISHAM 2020 criteria were used for diagnosis of CAPA, and EORTC/MSGERC 2020 criteria were used for evaluation of the treatment efficacy. A case-control study (one patient of the main group per two patients of the control group) was conducted to study risk factors for the development and features of CAPA. The control group included 120 adult COVID-19 patients without IA in the ICU, similar in demographic characteristics and background conditions. The median age of patients in the control group was 63 years, male – 67%. Results. 64% of patients with COVID-IA stayed in the ICU. Risk factors for the COVID-IA development in the ICU: chronic obstructive pulmonary disease (OR = 3.538 [1.104–11.337], p = 0.02), and prolonged (> 10 days) lymphopenia (OR = 8.770 [4.177–18.415], p = 0.00001). The main location of COVID-IA in the ICU was lungs (98%). Typical clinical signs were fever (97%), cough (92%), severe respiratory failure (72%), ARDS (64%) and haemoptysis (23%). Typical CT features were areas of consolidation (97%), hydrothorax (63%), and foci of destruction (53%). The effective methods of laboratory diagnosis of COVID-IA were test for galactomannan in BAL (62%), culture (33%) and microscopy (22%) of BAL. The main causative agents of COVID-IA are A. fumigatus (61%), A. niger (26%) and A. flavus (4%). The overall 12-week survival rate of patients with COVID-IA in the ICU was 42%, negative predictive factors were severe respiratory failure (27.5% vs 81%, p = 0.003), ARDS (14% vs 69%, p = 0.001), mechanical ventilation (25% vs 60%, p = 0.01), and foci of destruction in the lung tissue on CT scan (23% vs 59%, p = 0.01). Conclusions. IA affects predominantly ICU patients with COVID-19 who have concomitant medical conditions, such as diabetes mellitus, hematological malignancies, cancer, and COPD. Risk factors for COVID-IA in ICU patients are prolonged lymphopenia and COPD. The majority of patients with COVID-IA have their lungs affected, but clinical signs of IA are non-specific (fever, cough, progressive respiratory failure). The overall 12-week survival in ICU patients with COVID-IA is low. Prognostic factors of poor outcome in adult ICU patients are severe respiratory failure, ARDS, mechanical ventilation as well as CT signs of lung tissue destruction.
Objective. To study risk factors, etiology, clinical signs and treatment outcomes of invasive aspergillosis (IA) and mucormycosis combination (IAM) in children. Materials and Methods. A retrospective review of Saint-Petersburg register (1998–2021) of patients with IA was done and children with IAM were included. EORTC/MSGERG 2019 criteria were used for diagnosing and treatment results evaluation of invasive mycosis. We presented a clinical case of IAM in a child with acute lymphoblastic leukemia relapse. Results. A total of 12 children with IAM were included. They accounted 8% of all pediatric patients with invasive aspergillosis (n = 152). IAM was diagnosed in children with hematological malignancies and solid tumors from 4 to 16 years (median age – 11.5 years), mostly in girls (83%). Main risk factors of IAM were prolonged lymphopenia (75%, median 22 days) and neutropenia (67%, median 30 days) due to chemotherapy, systemic corticosteroids and/or immunosuppressive therapy, as well as HSCT. The predominant etiological agents of IA were Aspergillus niger (33%), A. nidulans (33%) and A. fumigatus (17%), of mucormycosis – Lichtheimia corymbifera (50%) and Rhizomucor spp. (50%). Based on EORTC/MSGERG 2019 criteria, «proven» mucormycosis was diagnosed in 83% of patients, «probable» – in 17%. «Probable» IA was found in 100% of patients. The most common clinical sites of IAM were the lungs (75%) and paranasal sinuses (43%), multifocal involvement was revealed in 33% of patients. Mucormycosis developed during antifungal therapy of IA in 83% of patients. Antifungal therapy of mucormycosis received 75% of patients (amphotericin B lipid complex – 89%, posaconazole – 78%, caspofungin – 33%), combined antifungal therapy – 33%, surgery – 50%; combination of surgical and antifungal treatment was used in 42% of patients. The overall 12-week survival was 77.8%. The use of combined surgical and antifungal treatment significantly improved the survival of children with IAM (p = 0.023). Conclusions. Mucormycosis was diagnosed in 8% of children with IA. IAM developed mostly in patients with hematological malignancies (83%), prolonged lymphopenia (75%) and neutropenia (67%) against the background of chemotherapy, systemic corticosteroids and/or immunosuppressive therapy, as well as HSCT. In 83% of patients mucormycosis was diagnosed during antifungal therapy for IA. The development of IAM increased overall 12-week mortality (50%). The combination of antifungal therapy with surgical treatment significantly improved prognosis of IAM (p = 0.023).
A retrospective analysis of the medical data of 12 patients with COVID-19 was performed. For the diagnosis of invasive aspergillosis the international criteria ECMM/ISHAM 2020 were used. We analyzed the scientific literature data on the diagnosis and treatment of invasive aspergillosis in patients with COVID-19.Results. Among the 12 examined patients with a severe course of COVID-19, invasive aspergillosis was diagnosed in 5 patients. Four patients (80%) were treated in the ICU. Steroids or interleukin-6 inhibitors were used in 80% patients. Severe lymphocytopenia was in 80% patients, neutropenia 20%. A fever refractory to antibiotic therapy was noted in 80% patients, an increase in respiratory failure – 60%, acute respiratory distress syndrome – 60%. All patients showed negative dynamics of changes in the chest CT scan. Invasive aspergillosis was confirmed with a positive test for galactomannan in bronchoalveolar lavage and / or serum in 100% of cases. All patients received antifungal therapy with voriconazole and/or caspofungin. The overall 12-week survival rate was 80%.Conclusion. In ICU patients with severe COVID-19 and progressive pulmonary symptoms invasive aspergillosis should be excluded. Examination of substrates from the lower respiratory tract (BAL, tracheal aspirate, or nonbronchoscopic lavage) is necessary. Laboratory examination should include microscopy, culture and test for galactomannan. Voriconazole and isavuconazole are drugs of choice for the treatment of invasive aspergillosis in patients with COVID-19.
We studied the risk factors, etiology, clinical features and the effectiveness of therapy of COVID-19-associated pulmonary aspergillosis (CAPA) in adult patients. In this retrospective study, we included 45 patients with proven (7%) and probable (93%) CAPA. The ECMM/ISHAM, 2020 criteria were used to diagnose CAPA. A case-control study was conducted to study the risk factors of CAPA; the control group included 90 adult COVID-19 patients without IA. In CAPA patients, the main underlying diseases were diabetes mellitus (33%), and hematological and oncological diseases (31%). The probability of CAPA developing significantly increased with lymphocytopenia >10 days (OR = 8.156 (3.056–21.771), p = 0.001), decompensated diabetes mellitus (29% vs. 7%, (OR = 5.688 (1.991–16.246), p = 0.001)), use of glucocorticosteroids (GCS) in prednisolone-equivalent dose > 60 mg/day (OR = 4.493 (1.896–10.647), p = 0.001) and monoclonal antibodies to IL-1ß and IL-6 (OR = 2.880 (1.272–6.518), p = 0.01). The main area of localization of CAPA was the lungs (100%). The clinical features of CAPA were fever (98% vs. 85%, p = 0.007), cough (89% vs. 72%, p = 0.002) and hemoptysis (36% vs. 3%, p = 0.0001). Overall, 71% of patients were in intensive care units (ICU) (median—15.5 (5–60) days), mechanical ventilation was used in 52% of cases, and acute respiratory distress syndrome (ARDS) occurred at a rate of 31%. The lung CT scan features of CAPA were bilateral (93%) lung tissue consolidation (89% vs. 59%, p = 0.004) and destruction (47% vs. 1%, p = 0.00001), and hydrothorax (26% vs. 11%, p = 0.03). The main pathogens were A. fumigatus (44%) and A. niger (31%). The overall survival rate after 12 weeks was 47.2%.
Invasive aspergillosis is a life-threatening complication in patients with severe influenza and COVID-19 in intensive care units. Risk factors for the invasive aspergillosis development are transitory immunosuppression associated with severe influenza and COVID-19, as well as the use of glucocorticosteroids and immunosuppressive therapy. In the presence of risk factors, suspected clinical and radiological signs of invasive aspergillosis, bronchoscopy and examination of material from the lower respiratory tract are necessary: test for galactomannan, microscopy with white calcofluor staining and inoculation on Sabouraud agar medium. Voriconazole or are recommended as first-line treatment for invasive aspergillosis in patients with severe influenza and COVID-19. Amphotericin B Liposomal, Amphotericin B Lipid Complex, and Caspofungin are the alternative options for the invasive aspergillosis treatment. Combination therapy is possible. It is necessary to control the underlying disease with eliminate or reduce the severity of risk factors.
Chronic pulmonary aspergillosis (CPA) is a severe disease that develops mainly in patients without obvious immune disorders. Computed tomography is the main instrumental method in the diagnosis of CPA, which is necessary to determine the form of the disease, to choose treatment policy, to combat complications, and to monitor therapy. This makes it important for a radiologist to understand the main aspects of timely and differential diagnosis. There are insufficient Russian studies on this problem. This paper analyzes the 2014–2020 Russian and foreign publications available in PubMed, Web of Science, Elsevier, and eLibrary electronic databases. When searching for information, the following keywords were used: “computed tomography”, “chronic pulmonary aspergillosis”, “aspergilloma”, “air-crescent symptom”, “differential diagnosis”.
Two cases of postoperative diagnosis of chronic pulmonary aspergillosis are presented, which were previously regarded as malignant neoplasms. A decisive role in the detection of chronic pulmonary aspergillosis is played by computed tomography, but the diagnosis should be confirmed by laboratory tests. The importance of early diagnosis of chronic pulmonary aspergillosis is associated with high risk of complications during surgery without the use of antifungal drugs.
Background: Invasive aspergillosis (IA) is a severe opportunistic infection that is not well understood in rheumatological patients. Objectives: To study risk factors, etiology, clinical manifestations and results of treatment of IA in adult rheumatological patients. Methods: Retrospective analysis of 830 patients (1998-2019) with “proven” and “probable” IA (EORTC / MSG, 2019), adults - 699 (84%). The main group included 18 (3%) adult rheumatological patients with IA, a control group included 610 (87%) adult hematological patients. Rheumatological patients were older, the average age was 59 years (21–75) vs 45 years (18–79), p = 0.005, and among them there were more women – 56% vs 42%, p = 0.01. Results: In rheumatological patients with IA, underlying diseases were ANCA-associated vasculitis (28%), granulomatosis with polyangiitis (22%), periarteritis (11%), systemic lupus erythematosus (22%), rheumatic heart disease (11%) and ankylosing spondylitis (6%). In the control group, underlying diseases were acute leukemia (45%), lymphomas (34%), chronic leukemia (9%), multiple myeloma (7%), myelodysplastic syndrome (3%), and other hematological diseases (2%). The main risk factors for IA development in rheumatological patients were: systemic steroids use (89% vs 69%), prolonged lymphocytopenia (76% vs 65%, median - 14 vs 12 days), treatment in ICU (44% vs 18%, p = 0.01), acute or chronic renal failure (39% vs 1%, p = 0.0008) and immunosuppressive therapy (28% vs 25%). Severe neutropenia was noted significantly less frequently (18% vs 83%, p = 0.0001). Additional risk factors were decompensated diabetes mellitus (17% vs 2%, p = 0.004), previous surgery (17% vs 1%, p = 0.001) and organ transplantation (6% vs 0%). In rheumatological patients, lung (83% vs 98%, p = 0.0001) and ≥2 organs (6% vs 8%) involvement were less common. Heart (11% vs 0%), sinuses (6% vs 5%) and central nervous system (6% vs 4%) involvement more often developed. In rheumatological patients, respiratory failure (61 vs 37%, p = 0.03), hemoptysis (28% vs 7%, p = 0.0001) and chest pain (17% vs 7%, p = 0, 04) were noted more often, less often - fever ≥38 0 С (67% vs 85%, p = 0.01) and cough (61% vs 70%). CT signs of lung damage were similar in both groups, but rheumatologic patients were more likely to show an «air crescent» sign and / or destruction cavity (44% vs 10%, p = 0.0001). In rheumatologic patients, IA was more often confirmed by isolation of Aspergillus spp. from BAL (80% vs 45%, p = 0.005) and by histological examination (22% vs 7%, p = 0.01). The main pathogens were A. fumigatus (50% vs 43%), A. niger (29% vs 32%), and A. flavus (14% vs 17%). Rheumatological patients were less likely to receive antifungal therapy 89% vs 99%, p = 0,0003. The main drug in both groups was voriconazole. The overall 12-week survival did not significantly differ between groups, but was lower in rheumatological patients with IA (69% vs 81%). Conclusion: In rheumatological patients, invasive aspergillosis more often developed at an older age, mainly in women. The main background diseases were ANCA-associated vasculitis, granulomatosis with polyangiitis, and systemic lupus erythematosus. Typical risk factors were steroids and immunosuppressants use, prolonged lymphocytopenia, ICU stay, and renal failure. The main causative agents were A. fumigatus , A. niger , and A. flavus . The main localization of infection were lungs. Respiratory failure, hemoptysis and heart involvement were typical. The overall 12-week survival of rheumatological patients with invasive aspergillosis was 69%. Disclosure of Interests: None declared
Objective: to study risk factors for invasive aspergillosis (IA), its etiology, clinical manifestations, and treatment efficiency in patients with rheumatic diseases (RD).Patients and methods. The first study of proven and probable IA (EORT/MSGERC, 2019) was conducted in 18 patients with RD, who accounted for 3% of all adult IA patients (n=699) included in the 1998–2020 registry of the Department of Clinical Mycology, Allergology, and Immunology, I.I. Mechnikov North-Western State Medical University (Group 1). This group comprised 56% women; the median age was 59 [21; 75] years. Group 2 (a comparison group) included 610 adult hematology patients with IA (median age, 45 [18; 79] years; 42% women). A prospective case-control study was conducted to identify risk factors for IA in patients with RD: 36 rheumatic patients without IA (median age, 58 (18–79) years; 61% women) (a control group).Results and discussion. Patients with RD were found to often develop IA in the presence of anti-neutrophilic cytoplasmic antibody-associated vasculitis (granulomatosis with polyangiitis and microscopic polyangiitis) and systemic lupus erythematosus (50 and 16%, respectively). It was shown for the first time that the likelihood of IA in patients with RD increases with prolonged (median 14 days) lymphocytopenia during RD treatment (odds ratio 13.0; 95% confidence interval, 3.3–50.3). The main causative agents of IA were A. fumigatus (50%) and A. niger (29%). IA was more severe in Group 1 than in Group 2: in the resuscitation and intensive care units, there were 44 and 18%, respectively (p=0.01). Group 1 versus Group 2 more frequently had respiratory failure (61 and 37%, respectively; p=0.03), hemoptysis (28 and 7%; p=0.0001), chest pain (17 and 7%; p=0.04), and cardiac involvement (11 and 1%; p=0.0001), and less frequently had fever (67 and 85%; p=0.01). The common site of IA was the lung (83%); the characteristic feature detected by computed tomography (CT) is pulmonary cavitation (44%). Antifungal therapy was used in 89% of Group 1 patients; the overall 12-week survival was 69%.Conclusion. In patients with RD, it is difficult to differentiate between the progression of the underlying disease, adverse drug reactions, infectious complications, or a combination of these disorders due to the similarity of their clinical manifestations. When RD patients with infectious syndrome and respiratory failure develop prolonged lymphocytopenia during combination therapy, AI should be suspected and lung CT, bronchoscopy, and mycological examination of the material obtained by bronchoalveolar lavage be done.