Literature DB >> 32891170

(1,3)-β-D-Glucan-based empirical antifungal interruption in suspected invasive candidiasis: a randomized trial.

Gennaro De Pascale1,2, Brunella Posteraro3,4, Sonia D'Arrigo5,6, Giorgia Spinazzola5,6, Rita Gaspari5,6, Giuseppe Bello5,6, Luca Maria Montini5,6, Salvatore Lucio Cutuli5,6, Domenico Luca Grieco5,6, Valentina Di Gravio5,6, Giulia De Angelis7, Riccardo Torelli8, Elena De Carolis8, Mario Tumbarello9,10, Maurizio Sanguinetti7,8, Massimo Antonelli5,6.   

Abstract

BACKGROUND: (1,3)-β-D-Glucan has been widely used in clinical practice for the diagnosis of invasive Candida infections. However, such serum biomarker showed potential to guide antimicrobial therapy in order to reduce the duration of empirical antifungal treatment in critically ill septic patients with suspected invasive candidiasis.
METHODS: This was a single-centre, randomized, open-label clinical trial in which critically ill patients were enrolled during the admission to the intensive care unit (ICU). All septic patients who presented invasive Candida infection risk factors and for whom an empirical antifungal therapy was commenced were randomly assigned (1:1) in those stopping antifungal therapy if (1,3)-β-D-glucan was negative ((1,3)-β-D-glucan group) or those continuing the antifungal therapy based on clinical rules (control group). Serum 1,3-β-D-glucan was measured at the enrolment and every 48/72 h over 14 days afterwards. The primary endpoint was the duration of antifungal treatment in the first 30 days after enrolment.
RESULTS: We randomized 108 patients into the (1,3)-β-D-glucan (n = 53) and control (n = 55) groups. Median [IQR] duration of antifungal treatment was 2 days [1-3] in the (1,3)-β-D-glucan group vs. 10 days [6-13] in the control group (between-group absolute difference in means, 6.29 days [95% CI 3.94-8.65], p < 0.001). Thirty-day mortality was similar (28.3% [(1,3)-β-D-glucan group] vs. 27.3% [control group], p = 0.92) as well as the overall rate of documented candidiasis (11.3% [(1,3)-β-D-glucan group] vs. 12.7% [control group], p = 0.94), the length of mechanical ventilation (p = 0.97) and ICU stay (p = 0.23).
CONCLUSIONS: In critically ill septic patients admitted to the ICU at risk of invasive candidiasis, a (1,3)-β-D-glucan-guided strategy could reduce the duration of empirical antifungal therapy. However, the safety of this algorithm needs to be confirmed in future, multicentre clinical trial with a larger population. TRIAL REGISTRATION: ClinicalTrials.gov, NCT03117439 , retrospectively registered on 18 April 2017.

Entities:  

Keywords:  (1,3)-β-D-Glucan; Antifungal therapy; Biomarker; Candida infection; Sepsis

Mesh:

Substances:

Year:  2020        PMID: 32891170      PMCID: PMC7487510          DOI: 10.1186/s13054-020-03265-y

Source DB:  PubMed          Journal:  Crit Care        ISSN: 1364-8535            Impact factor:   9.097


Backgrounds

Intensive care unit (ICU) physicians usually prescribe empirical antifungals relying upon clinical risk factors [1] or prediction rules (i.e. a Candida score [CS] of ≥ 3 and a Candida colonization index [CCI] of ≥ 0.5), which, unfortunately, do not always address a population with high rates of invasive candidiasis [2-5]. Although supported by a low-quality evidence, current guidelines recommend to stop antifungals after 5 to 10 days of therapy, according to final microbiological diagnosis, patients’ clinical conditions and the results of non-culture-based diagnostic assays [6, 7]. Nonetheless, the unrestrictive use of antifungals, without evidence of confirmed infection, is a driver of increased costs and drug-related side effects, potentially influencing Candida ecology and overall antifungal susceptibility. In a seminal 1-day multicentre observational study [8], 7.5% ICU patients underwent systemic antifungals: two third of them had no documented infection and no survival benefit was observed in such population. These results have been recently confirmed in a large randomized trial where empirical therapy with micafungin in patients with ICU-acquired sepsis, Candida colonization and multiple organ failure did not increase the fungal infection-free survival at day 28 [9]. Indeed, an early (≤ 5 days) empirical antifungal de-escalation strategy in patients with suspected invasive Candida infection (ICI) is increasingly adopted and recent observational data support the safety of such approach in critically ill patients [10]. Among non-culture-based diagnostic tests, (1,3)-β-d-glucan (BDG) has been used as a biomarker for prompt ICI diagnosis and as a guide to discontinue empirical antifungal therapy [11-15]. Interestingly, in a recent pivotal, randomized study, the BDG assay, used in combination with mannan/anti-mannan serum assays, significantly increased (54% vs. 2%, p < 0.001) the rate of early antifungal therapy interruption without influencing ICI-free 28-day survival [16]. Since 2011, we have been implementing the use of BDG not only to hasten the time for the diagnosis and treatment of potential ICIs but also as a tool for antifungal stewardship [17], reporting the possibility to avoiding or shortening duration of the empirical antifungal treatment in more than 70% of potentially treatable cases [18]. The aim of the present study was to test whether the BDG used as a decision-making tool for empirical antifungal therapy management may be effective in reducing the duration of antifungal treatments in critically ill septic patients with suspected ICIs.

Methods

Study design and patients

This open-label, double-arm, randomized controlled trial was conducted in the 18-bed general ICU and in the 13-bed surgical ICU of a 1500-bed tertiary teaching hospital in Rome, from July 1, 2016, to June 30, 2018. According to Italian law, the protocol was approved by the Università Cattolica del Sacro Cuore Ethics Committee (approval number UCSC20980/16), and written informed consent was obtained from the patient or the legally authorized representative. The trial was registered on www.clinicaltrials.gov (NCT03117439). The manuscript was prepared according to the CONSORT statement. ICU patients older than 18 years were assessed for eligibility if they developed sepsis according to the Sepsis-3 definitions [19, 20] while ongoing broad-spectrum antibiotic therapy (i.e. receiving at least two antibiotics or one active against MDR pathogens in patients with sepsis persisting from more than 48 h). Patients should also match the following conditions: (1) ICU stay ≥ 48 h with an expected length of stay of 48 h, (2) mechanical ventilation (MV), (3) presence of central venous catheter (CVC)/arterial line (AL), (4) presence of septic shock and (5) CS ≥ 3 or CCI ≥ 0.5 if septic shock was absent (eFig. 1). Patients were excluded if they (1) had a diagnosis of complicated ICI, (2) were already ongoing any type of antifungal therapy, (3) were immunocompromised (long-term immunosuppressive or steroid therapy; acquired immunodeficiency syndrome [AIDS]; white blood cell count (WBC) < 1000/mmc or neutrophils < 500/mmc), (4) were pregnant, (5) were already enrolled in other interventional studies, (6) if BDG serum test was not available (for the BG group) and (7) in absence of informed consent. Patients who died in the first 24 h were also excluded.

Randomization and masking

In each ICU, the local investigators enrolled participants in the study. Patients were randomized in a 1:1 ratio to treatment groups according to a computer-generated random assignment. Allocation was issued using opaque, sealed, numbered envelopes. No masking was used after randomization. All the investigators were involved in the study planning, protocol design, trial running and final report writing.

Procedures

All patients received a first dose of antifungal therapy and had serum (1,3)-β-d-glucan levels measured at baseline. In the patients assigned to the BDG group, antifungal therapy was stopped in the presence of a first negative (1,3)-β-d-glucan value (< 80 pg/mL) and maintained in case of a positive result. BDG serum levels were checked every 48/72 h during the first 14 days after enrolment, stopping ongoing antifungals after a negative result and restarting them in case of a result ≥ 80 pg/mL. In the patients assigned to the control group, the decision regarding the duration of antifungal therapy was left to the attending physician, according to current guidelines for empirical antifungal therapy [11, 12]. In the control group, BDG levels were not measured after the baseline and their use was not allowed for antifungal stewardship. All documented ICIs were treated according to current guidelines [6, 7]. All data were recorded on the electronic ICU charts (Digistat®) and computerized microbiology laboratory databases (see Additional file 1 for further details).

Outcome measures

The primary outcome was the duration of antifungal therapy (days) during the first 30 days after study inclusion. Secondary endpoints were 30-day mortality, ICU mortality, hospital mortality, antifungal stopping rate, duration of MV, duration of ICU length of stay, prevalence of ICIs and their outcome and cost analysis including antifungal types and BDG test performed.

Microbiological analysis

Serum recovered from the patients’ blood samples was tested for BDG (Fungitell; Associates of Cape Cod Inc., Falmouth, MA, USA) according to the manufacturer’s instructions. All BDG tests had a turnaround time ≤ 24 h, with the exception of samples from the patients enrolled on Saturday and Sunday. The concentration of BDG in each sample was automatically calculated, and 80 pg/mL was used as a positive cut-off, according to the manufacturer (Fungitell) indications (see additional file 1 for further details) [17].

Statistical analysis

This aimed to test whether the BDG-guided strategy was superior in terms of antifungal duration, as assessed by the number of days with antifungals during the first 30 days from enrolment. According to previously published observational data [18], the study was designed to enrol at least 96 patients to obtain, with a power of 95%, a 30% (3 days) difference in duration of antifungal therapy between the two groups. We assumed a standard deviation (SD) of 4 days in both groups and an α error of 0.05 and an estimated baseline duration of 10 days. To account for an approximate 20% dropout rate, we set a total number of 120 patients (Fig. 1). All statistical analyses were performed using MedCalc software, version 12.2.1 (MedCalc®, MariaKerke, Belgium). Graphing of data was undertaken using Prism version 6.0 for Windows (graphPad Software, San Diego, CA) (see Additional file 1 for further details).
Fig. 1

Flow chart of the study inclusion process

Flow chart of the study inclusion process

Results

Study patients

Two hundred ninety-two patients with sepsis and risk factors for ICI were assessed for eligibility, of whom 120 were enrolled and randomly assigned to the BDG group (n = 60) and the control group (n = 60). Seven patients in the BDG group and five in the control group were subsequently excluded from the analysis (Fig. 1). The two groups had similar characteristics at baseline (Table 1) although patients in the control group were more frequently admitted after surgery and had less circulatory failure (45.5% vs. 26.4%, p = 0.05 and 9.1% vs. 24.5%, p = 0.04, respectively). Fifty-five out of 108 patients presented a CS value ≥ 3, with abdominal surgery and multifocal Candida colonization as leading risk factors (n = 70, 64.8% and n = 39, 36.1%, respectively). No more than one third of the enrolled patients had a CCI ≥ 0.5, and Candida albicans was the most prevalent isolated species (22 out of 35 isolates, 62.9%). Sixty patients (55.6%) received echinocandins as first-line antifungal agents, without significant differences in terms of either drug type or allocation group. In 20 patients, a bacterial bloodstream infection was detected, mainly due to Gram-negative bacteria (n = 16) (Table 1).
Table 1

Baseline patient characteristics

VariableBDG group (n = 53)Control group (n = 55)p value
Demographics and comorbidities
 Age, years62 [47–75]68 [52.5–73]0.49
 Male sex, N (%)34 (64.2)32 (58.2)0.56
 Medical admission, N (%)31 (58.5)26 (47.3)0.26
  -Respiratory failure, N (%)13 (24.5)17 (30.9)0.52
  -Circulatory failure, N (%)13 (24.5)5 (9.1)0.04
  -Other organ failure, N (%)*5 (9.4)4 (7.3)0.96
Surgical admission, N (%)14 (26.4)25 (45.5)0.05
 Trauma admission, N (%)8 (15.1)4 (7.3)0.23
 SAPS II score43 [33–57]42 [32.25–52.75]0.59
 Charlson score3 [1–6]4 [1–6.75]0.57
  -Cardiovascular diseases, N (%)11 (20.8)7 (12.7)0.31
  -COPD, N (%)8 (15.1)10 (18.2)0.8
  -Chronic renal failure, N (%)8 (15.1)7 (12.7)0.78
  -Diabetes, N (%)7 (13.2)14 (25.5)0.15
  -Chronic liver failure, N (%)4 (7.5)1 (1.8)0.2
Presenting features and risk factors for ICI at randomization
 Hospital LOS before randomization (days)9 [3.75–15.25]8 [4–13.75]0.79
 ICU LOS before randomization (days)3 [2–10]3 [2–5]0.4
 MV duration before randomization (days)3 [1–8.25]2 [1–4.75]0.67
 Vasopressors duration before randomization (days)0 [0–3]0 [0–3]1
 SOFA score7 [4.75–11.25]7 [4–10]0.19
 Septic shock, N (%)27 (50.9)26 (47.3)0.85
 AKI requiring CRRT, N (%)15 (28.3)7 (12.7)0.06
Candida score ≥ 3, N (%)26 (49.1)29 (52.7)0.85
  -Abdominal surgery, N (%)30 (56.6)40 (72.7)0.11
  -Multifocal Candida colonization, N (%)21 (39.6)18 (32.7)0.55
  -Total parenteral nutrition, N (%)5 (9.4)18 (32.7)0.004
Candida colonization index ≥ 0.5, N (%)17 (32.1)18 (32.7)1
  -Candida albicans, N (%)12 (22.6)10 (18.2)0.74
  -Non-C. albicans Candida species, N (%)**5 (9.4)8 (14.5)0.6
 Invasive Candida infection, N (%)#6 (11.3)5 (9.1)0.95
 Bacterial bloodstream infection, N (%)##11 (20.8)9 (16.4)0.73
  -Gram-positive bacteria, N (%)3 (5.7)1 (1.8)0.57
  -Gram-negative bacteria, N (%)8 (15.1)8 (14.5)0.85
 Echinocandins as initial antifungals, N (%)33 (62.3)27 (49.1)0.24
  -Caspofungin, N (%)16 (30.2)16 (29.1)0.93
  -Anidulafungin, N (%)17 (32.1)11 (20)0.23
 Fluconazole as initial antifungal, N (%)20 (37.7)28 (50.9)0.24

Data are presented as median [IQR], unless otherwise indicated

BDG (1–3)-β-d-glucan, SAPS II Simplified Acute Physiology Score, COPD chronic obstructive pulmonary disease, ICI invasive Candida infection, LOS length of stay, ICU intensive care unit, MV mechanical ventilation, SOFA Sequential Organ Failure Assessment, AKI acute kidney injury, CRRT continuous renal replacement therapy, CVC central venous catheter, IQR interquartile range

*Neurological failure (n = 6), liver failure (n = 2), renal failure (n = 1)

**Candida glabrata (n = 4), Candida tropicalis (n = 3), Candida dubliniensis (n = 3), Candida parapsilosis (n = 3)

#See eTable 4 for further details

##Gram-positive bacteria (Enterococcus spp., n = 3; Staphylococcus aureus, n = 1); Gram-negative bacteria (Escherichia coli, n = 5; Klebsiella pneumoniae, n = 4; Enterobacter spp., n = 3; Acinetobacter Baumannii, n = 2; Proteus mirabilis, n = 1; Bacteroides fragilis, n = 1)

Baseline patient characteristics Data are presented as median [IQR], unless otherwise indicated BDG (1–3)-β-d-glucan, SAPS II Simplified Acute Physiology Score, COPD chronic obstructive pulmonary disease, ICI invasive Candida infection, LOS length of stay, ICU intensive care unit, MV mechanical ventilation, SOFA Sequential Organ Failure Assessment, AKI acute kidney injury, CRRT continuous renal replacement therapy, CVC central venous catheter, IQR interquartile range *Neurological failure (n = 6), liver failure (n = 2), renal failure (n = 1) **Candida glabrata (n = 4), Candida tropicalis (n = 3), Candida dubliniensis (n = 3), Candida parapsilosis (n = 3) #See eTable 4 for further details ##Gram-positive bacteria (Enterococcus spp., n = 3; Staphylococcus aureus, n = 1); Gram-negative bacteria (Escherichia coli, n = 5; Klebsiella pneumoniae, n = 4; Enterobacter spp., n = 3; Acinetobacter Baumannii, n = 2; Proteus mirabilis, n = 1; Bacteroides fragilis, n = 1)

Primary and secondary endpoints

The duration of antifungal therapy within the first 30 days after enrolment was significantly lower in the BDG group (median [interquartile range, IQR] 2 [1-3] days), compared with the control group (10 [6-13] days) (between-group absolute difference in means 6.29 days, 95% CI [3.94 to 8.65], p < 0.001) (Table 2). The antifungal stopping rate was significantly higher in the BDG group compared with the control group at day 5 (N = 37, 69.8% vs. N = 3, 5.5%, respectively), at day 10 (N = 44, 83% vs. N = 27, 49.1%, respectively) and at day 15 (N = 47, 88.7% vs. 43, N = 78.2%, respectively) (HR 2.06, 95% CI 1.83–4.12, p < 0.001 by log-rank test) (Fig. 2a). The Kaplan-Meier survival probability at day 30 did not differ between the two groups (HR 1.07, 95% CI 0.52–2.18, p = 0.86 by log-rank test), as well as the rate of ICU and hospital mortality (30.2% vs. 30.9%, p = 0.89 and 35.9% vs. 32.7%, p = 0.88, respectively) (Fig. 2b). This was confirmed by Cox regression analysis, evaluating the role of potential confounders (type of admission, Charlson score, SAPS II score, SOFA score, occurrence of septic shock) (HR 0.91, 95% CI [0.43–1.91], p = 0.8). Other secondary outcomes did not differ between the two groups (Table 2) (see Additional file 1 for further details).
Table 2

Outcome measures in the (1–3)-β-d-glucan (BDG) and the control groups

VariableBDG group (n = 53)Control group (n = 55)Between-group absolute difference in means (95% CI)p value
Primary outcome
 Duration of antifungal therapy, days2 [1–3]10 [6–13]6.29 (3.94 to 8.65)< 0.001
Secondary outcomes
 30-day mortality, N (%)15 (28.3)15 (27.3)− 1% (− 16.89 to 18.93)0.92
 ICU mortality, N (%)16 (30.2)17 (30.9)0.7% (− 17.7 to 18.97)0.89
 Hospital mortality, N (%)19 (35.9)18 (32.7)− 3.2% (− 15.7 to 21.93)0.88
 Subsequent ICI, N (%)*02 (3.6)3.6% (− 3.83 to 12.47)0.5
 Hospital LOS, days35 [23.75–55.25]38 [20–59.5]− 7.41 (− 21.55 to 6.73)0.87
 ICU LOS, days18 [7.75–24.25]13 [7–26]− 0.5 (− 6.95 to 5.95)0.23
 Mechanical ventilation duration, days9 [4.75–17.25]9 [3.25–19.75]3.21 (− 2.05 to 8.46)0.97
 Vasopressors duration, days4 [0.75–8.25]3 [0–11]0.06 (− 2.95 to 3.07)0.6
 Total antifungals costs, €110 [2.64–708]113.2 [9.68–1255.6]318.63 (− 310.1 to 947.3)0.24
 Echinocandins cost, €708 [185.6–1071.5]1320 [618.5–30,149.5]937.05 (− 64.2 to 1938.3)0.07
 BG cost, € mean ± SD80.8 ± 20.4

Data are presented as median (IQR) and N (%). Between-group absolute differences are calculated using the mean values, percentage differences and 95% CIs

BDG (1–3)-β-d-glucan, ICU intensive care unit, ICI invasive Candida infection, LOS length of stay, € euro, IQR interquartile range

*See eTable 1 for further details

Fig. 2

a Kaplan-Meier plots showing the evolution with time of the percentage of patients who remained on antifungals in the (1,3)-β-d-glucan and control groups. b Probability of survival from study inclusion (day 0) through day 30 for patients in the (1,3)-β-d-glucan and control groups

Outcome measures in the (1–3)-β-d-glucan (BDG) and the control groups Data are presented as median (IQR) and N (%). Between-group absolute differences are calculated using the mean values, percentage differences and 95% CIs BDG (1–3)-β-d-glucan, ICU intensive care unit, ICI invasive Candida infection, LOS length of stay, € euro, IQR interquartile range *See eTable 1 for further details a Kaplan-Meier plots showing the evolution with time of the percentage of patients who remained on antifungals in the (1,3)-β-d-glucan and control groups. b Probability of survival from study inclusion (day 0) through day 30 for patients in the (1,3)-β-d-glucan and control groups

Invasive Candida infections and (1,3)-β-d-glucan results

No false negative BDG results were obtained, and thirteen ICIs were diagnosed during the study period: 11 at enrolment (six in the BDG group and five in the control group) and 2 during the follow-up period (both in the control group). Eleven patients were candidaemic and two had intra-abdominal candidiasis without positive blood cultures. Overall mortality was 46.2% without differences between the two groups in terms of type of infection, clinical severity and main outcomes (eTable 1). Baseline BDG levels were detected in all but three patients in the control group. Nineteen subjects had BDG values ≥ 80 pg/mL in the absence of ICI (i.e. false positive), but their levels were lower compared with true BG-positive sera (292.9 ± 173.4 pg/mL vs. 492 ± 350.5 pg/mL, p = 0.046) (Fig. 3a). Additionally, excluding negative results, BDG initial levels were relatively high, especially in the BDG group (eFigure 3). The duration of antifungal therapy in patients randomized to the BDG group with false positive results did not differ from that of patients in the control group without ICI (8 [3–13.25] days vs. 8 [6–12.5] days, p = 0.65) and was significantly lower compared with that of patients with ICI (8 [3–13.25] days vs. 16 [11.75–24] days, p = 0.018) (Fig. 3b).
Fig. 3

a (1,3)-β-d-Glucan results for patients with and without invasive Candida infections. b Duration of antifungal therapy among intensive care unit patients according to the absence or presence of invasive Candida infections and the positivity of the (1,3)-β-d-glucan assay

a (1,3)-β-d-Glucan results for patients with and without invasive Candida infections. b Duration of antifungal therapy among intensive care unit patients according to the absence or presence of invasive Candida infections and the positivity of the (1,3)-β-d-glucan assay

Discussion

In this randomized controlled open-label study, the use of BDG as an antifungal stewardship tool in critically ill septic patients at risk of ICI did significantly reduce the duration of antifungal therapy without adverse clinical outcome. BDG diagnostic performance was higher compared with commonly used clinical and microbiological algorithms, and BDG serum levels of patients with false positive results were significantly lower than those observed in patients with ICI. During the last years, (1,3)-β-d-glucan clinical use has been implemented as a non-invasive diagnostic test for invasive candidiasis in both non-neutropenic and onco-haematological patients [21]. In a cohort of septic critically patients, the use of the BDG allowed an early diagnosis of ICI with a negative predictive value (NPV) of nearly 99%, hastening the diagnosis of candidaemia of 24–72 h compared with standard microbiological results [17]. Moreover, in 166 septic patients (73 with candidaemia and 93 with bacteraemia), the combination of procalcitonin (< 2 ng/mL) with BDG (≥ 80 pg/mL) has been observed to increase the overall positive predictive value (PPV) to 96% and the NPV to 95% [22]. Our results show that in high-risk critically ill septic patients, the antifungal empirical therapy may be shortened when at least one BDG is negative, which would rule out the presence of an invasive candidiasis. Although the study population included patients at high risk of ICI, mainly involving surgical patients, these data are in line with recent studies investigating the reliability of such test as a decision-making tool for empirical antifungal interruption in patients at risk of ICI [23]. In two observational investigations, such approach allowed safe empirical antifungal discontinuation as confirmed by the definite negative findings from blood and other sterile site cultures [13, 18], thus shortening empirical antifungal therapy exposition in about 90% of patients with negative BDG [18]. Similarly, the combination of BDG with Candida albicans germ tube antibody (CAGTA) showed a 100% sensitivity in a population of septic patients (mainly underwent gastrointestinal surgery), allowing antifungal discontinuation in one third of these cases [24]. Only one randomized trial had investigated the feasibility of a biomarker-based strategy for early interruption of antifungal treatment in high-risk critically ill patients [16]. In that paper, 109 ICU patients with risk factors for ICI were randomized to a strategy where the duration of antifungals was decided based on BDG, mannan and anti-mannan assays or to a standard 14-day empirical treatment. Interestingly, empirical antifungal therapy was stopped earlier in the biomarker group compared to the control group (54% vs. 2%, p < 0.001), with lower duration in the former (6 vs. 14 days, p < 0.001, respectively) and no impact on ICI rate, MV-free days, ICU length of stay and mortality. Although in line with the above results, our study provides new information on the clinical feasibility of a biomarker-based antifungal stewardship and addresses some different features. First, our study was more focussed on septic patients at risk for ICI, while all the other study referred to general critically ill patients. Second, we used a single biomarker (i.e. BDG-based) strategy where the BDG assay was performed the day of enrolment and at least every 48/72 h during the first 14 days. In patients randomized to the BDG group, with the exception of those enrolled on Saturday and Sunday, the result was available in the next 24 h and, in the presence of a negative result, antifungal therapy was promptly stopped. This strategy explains the really short duration of therapy in patients managed with the BDG algorithm (median [IQR] 2 days [1-3]), where in most cases only the first antifungal loading dose was administered. However, we observed an unbalanced distribution of surgical patients (mainly among controls), leading to a potential bias in the de-escalation approach. Nevertheless, compared with other investigations, also patients in the control group received a shorter course of empirical therapy [25, 26]. Given the detrimental clinical impact of inadequate empirical antifungal treatment in critically ill patients with ICI, current guidelines address the importance of a prompt and adequate empirical antifungal treatment in all high-risk patients, but clinical and microbiological indications for antifungal de-escalation in patients without evidence of infection are still a matter of debate [6, 27]. The most recent IDSA guidelines [12] recommend a minimal duration of empirical antifungal therapy of 4–5 days, depending on clinical response and microbiological results including non-culture-based diagnostic tests with a high NPV. Interestingly, in a recent observational study, antifungal de-escalation was performed in 20% of 190 patients, significantly shortening treatment duration (median [IQR] 6 [5-18] vs. 13 [7-15], p = 0.02), without any adverse clinical outcome [10]. Similarly, two recent large-scale studies failed to demonstrate outcome benefits for empirical systemic antifungal therapy in non-immunocompromised critically ill patients [9, 25]. In our study, the decision to discontinue the antifungal therapy was not protocolized and was left to the attending physician, based on patients’ clinical conditions and final microbiological diagnosis, with the indication to keep the 5–14-day interval (time to definite microbiological results and recommended duration of uncomplicated episodes, respectively). This approach was previously applied in another observational study from our group where the duration of antifungal empirical therapy for patients with risk factors but without evidence of ICI ranged from 4 and 11 days [18]. One of the drawbacks of BDG use in such clinical setting is the possibility of false positive results. These may be associated with different clinical conditions, including renal replacement therapy (RRT), packing with surgical gauzes, concomitant administration of albumin, immunoglobulins, beta-lactam antibiotics or Gram-positive bloodstream infections [28, 29]. False positive results usually show lower serum levels compared with true positive assays and, although in the absence of a clear clinical threshold, they are not influenced by the administration of antifungals [22]. In our study, the rate of false positive BDG results was 18.3% and, with the exception of Ig administration, it was not associated with other usual confounding factors. In addition, all the disposable material used for test analysis was BDG free. However, this feature did not represent a clinical issue, since the duration of antifungal therapy in such patients was actually the same of controls (8.2 ± 1.7 days vs. 9.6 ± 0.8 days, p = 0.65). Additionally, BDG initial levels were high in both groups (higher in the BDG group), and this aspect may be explained by the selection bias deriving from the exclusion of all negative results. Our data are in contrast with the EMPIRICUS randomized clinical trial, where BDG levels were not significantly different between patients with candidaemia vs. those with multiple colonization [9, 17, 18]. The observed differences may be explained by the availability, in our study, of a single and dedicated microbiological laboratory for BDG assay testing, thus minimizing the possibility of environmental glucan contaminations. Finally, our study supports the use of a BDG-based antifungal stewardship strategy to reduce antifungal exposure, limiting its effect on ecological pressure (emergence of resistant C. albicans strains and non-C. albicans Candida species), drug toxicity, adverse drug interactions and echinocandin-driven costs [30, 31]. This study has a number of limitations. First, the trial was unblinded and monocentric, so the results, especially secondary outcomes, may not be generalized to other settings with different epidemiological patterns and laboratory resources. Second, the overall rate of invasive candidiasis was not high, and this may be explained by the specific case-mix of the study where only part of the patients belonged to the categories at highest risk of ICI as recurrent gastrointestinal leakage and acute necrotizing pancreatitis. In addition, surgical admissions were more frequent among controls, leading to a potential bias regarding the observed de-escalation rate. Third, there was not a fixed timepoint for BDG assessment but a window of at least 24 h. Further, therapy duration in the control group was not standardized and mainly represented by surgical cases although reflecting a common clinical approach in the daily real life. Finally, the sample size was not appropriate to definitely address the safety of such strategy.

Conclusions

In conclusion, this is the first randomized trial where an algorithm based only on BDG results was evaluated as antifungal stewardship tool in severe patients with sepsis. This study shows that a reduction in the antifungal therapy duration and consumption in critically ill patients at risk of ICI (especially surgical ones) can be obtained by the use of this BDG-guided algorithm. A larger multicentre randomized study is warranted to confirm the efficacy and safety of such approach in the ICU setting. Additional file 1. Including further details on Methods, Results and six tables (eTable 1, eTable 2, eTable 3, eTable4, eTable 5, eTable 6) and three figures (eFigure 1, eFigure 2, eFigure 3).
  31 in total

Review 1.  Candida and invasive mould diseases in non-neutropenic critically ill patients and patients with haematological cancer.

Authors:  A L Colombo; J N de Almeida Júnior; Monica A Slavin; Sharon C-A Chen; Tania C Sorrell
Journal:  Lancet Infect Dis       Date:  2017-07-31       Impact factor: 25.071

2.  Surviving Sepsis Campaign: International Guidelines for Management of Sepsis and Septic Shock: 2016.

Authors:  Andrew Rhodes; Laura E Evans; Waleed Alhazzani; Mitchell M Levy; Massimo Antonelli; Ricard Ferrer; Anand Kumar; Jonathan E Sevransky; Charles L Sprung; Mark E Nunnally; Bram Rochwerg; Gordon D Rubenfeld; Derek C Angus; Djillali Annane; Richard J Beale; Geoffrey J Bellinghan; Gordon R Bernard; Jean-Daniel Chiche; Craig Coopersmith; Daniel P De Backer; Craig J French; Seitaro Fujishima; Herwig Gerlach; Jorge Luis Hidalgo; Steven M Hollenberg; Alan E Jones; Dilip R Karnad; Ruth M Kleinpell; Younsuk Koh; Thiago Costa Lisboa; Flavia R Machado; John J Marini; John C Marshall; John E Mazuski; Lauralyn A McIntyre; Anthony S McLean; Sangeeta Mehta; Rui P Moreno; John Myburgh; Paolo Navalesi; Osamu Nishida; Tiffany M Osborn; Anders Perner; Colleen M Plunkett; Marco Ranieri; Christa A Schorr; Maureen A Seckel; Christopher W Seymour; Lisa Shieh; Khalid A Shukri; Steven Q Simpson; Mervyn Singer; B Taylor Thompson; Sean R Townsend; Thomas Van der Poll; Jean-Louis Vincent; W Joost Wiersinga; Janice L Zimmerman; R Phillip Dellinger
Journal:  Intensive Care Med       Date:  2017-01-18       Impact factor: 17.440

3.  Biomarker-based strategy for early discontinuation of empirical antifungal treatment in critically ill patients: a randomized controlled trial.

Authors:  Anahita Rouzé; Séverine Loridant; Julien Poissy; Benoit Dervaux; Boualem Sendid; Marjorie Cornu; Saad Nseir
Journal:  Intensive Care Med       Date:  2017-09-22       Impact factor: 17.440

4.  ESICM/ESCMID task force on practical management of invasive candidiasis in critically ill patients.

Authors:  Ignacio Martin-Loeches; Massimo Antonelli; Manuel Cuenca-Estrella; George Dimopoulos; Sharon Einav; Jan J De Waele; Jose Garnacho-Montero; Souha S Kanj; Flavia R Machado; Philippe Montravers; Yasser Sakr; Maurizio Sanguinetti; Jean-Francois Timsit; Matteo Bassetti
Journal:  Intensive Care Med       Date:  2019-03-25       Impact factor: 17.440

5.  MSG-01: A randomized, double-blind, placebo-controlled trial of caspofungin prophylaxis followed by preemptive therapy for invasive candidiasis in high-risk adults in the critical care setting.

Authors:  Luis Ostrosky-Zeichner; Shmuel Shoham; Jose Vazquez; Annette Reboli; Robert Betts; Michelle A Barron; Mindy Schuster; Marc A Judson; Sanjay G Revankar; Juan Pablo Caeiro; Julie E Mangino; David Mushatt; Roger Bedimo; Alison Freifeld; Minh Hong Nguyen; Carol A Kauffman; William E Dismukes; Andrew O Westfall; Jeanna Beth Deerman; Craig Wood; Jack D Sobel; Peter G Pappas
Journal:  Clin Infect Dis       Date:  2014-02-18       Impact factor: 9.079

6.  1,3-ß-D-glucan concentrations in blood products predict false positive post-transfusion results.

Authors:  B Liss; O A Cornely; D Hoffmann; V Dimitriou; H Wisplinghoff
Journal:  Mycoses       Date:  2015-11-18       Impact factor: 4.377

7.  Usefulness of the "Candida score" for discriminating between Candida colonization and invasive candidiasis in non-neutropenic critically ill patients: a prospective multicenter study.

Authors:  Cristóbal León; Sergio Ruiz-Santana; Pedro Saavedra; Beatriz Galván; Armando Blanco; Carmen Castro; Carina Balasini; Aránzazu Utande-Vázquez; Francisco J González de Molina; Miguel A Blasco-Navalproto; Maria J López; Pierre Emmanuel Charles; Estrella Martín; María Adela Hernández-Viera
Journal:  Crit Care Med       Date:  2009-05       Impact factor: 7.598

8.  Impact of a diagnostics-driven antifungal stewardship programme in a UK tertiary referral teaching hospital.

Authors:  R Rautemaa-Richardson; V Rautemaa; F Al-Wathiqi; C B Moore; L Craig; T W Felton; E G Muldoon
Journal:  J Antimicrob Chemother       Date:  2018-12-01       Impact factor: 5.790

9.  β-D-glucan surveillance with preemptive anidulafungin for invasive candidiasis in intensive care unit patients: a randomized pilot study.

Authors:  Kimberly E Hanson; Christopher D Pfeiffer; Erika D Lease; Alfred H Balch; Aimee K Zaas; John R Perfect; Barbara D Alexander
Journal:  PLoS One       Date:  2012-08-06       Impact factor: 3.240

10.  Presence of Candida cell wall derived polysaccharides in the sera of intensive care unit patients: relation with candidaemia and Candida colonisation.

Authors:  Julien Poissy; Boualem Sendid; Sébastien Damiens; Ken Ichi Ishibashi; Nadine François; Marie Kauv; Raphaël Favory; Daniel Mathieu; Daniel Poulain
Journal:  Crit Care       Date:  2014-06-29       Impact factor: 9.097

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1.  Can Beta-D-Glucan testing as part of the diagnostic pathway for invasive fungal infection reduce anti-fungal treatment costs?

Authors:  David O Hamilton; Tosin Lambe; Alexander Howard; Patricia Crossey; Jennifer Hughes; Rui Duarte; Ingeborg D Welters
Journal:  Med Mycol       Date:  2022-05-28       Impact factor: 3.747

2.  Noninvasive Testing and Surrogate Markers in Invasive Fungal Diseases.

Authors:  George R Thompson; David R Boulware; Nathan C Bahr; Cornelius J Clancy; Thomas S Harrison; Carol A Kauffman; Thuy Le; Marisa H Miceli; Eleftherios Mylonakis; M Hong Nguyen; Luis Ostrosky-Zeichner; Thomas F Patterson; John R Perfect; Andrej Spec; Dimitrios P Kontoyiannis; Peter G Pappas
Journal:  Open Forum Infect Dis       Date:  2022-03-04       Impact factor: 4.423

3.  A multisite evaluation of antifungal use in critical care: implications for antifungal stewardship.

Authors:  C Logan; C Hemsley; A Fife; J Edgeworth; A Mazzella; P Wade; A Goodman; P Hopkins; D Wyncoll; J Ball; T Planche; S Schelenz; T Bicanic
Journal:  JAC Antimicrob Resist       Date:  2022-06-23

4.  Performance of Repeated Measures of (1-3)-β-D-Glucan, Mannan Antigen, and Antimannan Antibodies for the Diagnosis of Invasive Candidiasis in ICU Patients: A Preplanned Ancillary Analysis of the EMPIRICUS Randomized Clinical Trial.

Authors:  Claire Dupuis; Clément Le Bihan; Daniele Maubon; Laure Calvet; Stéphane Ruckly; Carole Schwebel; Lila Bouadma; Elie Azoulay; Muriel Cornet; Jean-Francois Timsit
Journal:  Open Forum Infect Dis       Date:  2021-03-02       Impact factor: 3.835

5.  Risk Factors for Invasive Candida Infection in Critically Ill Patients: A Systematic Review and Meta-analysis.

Authors:  Daniel O Thomas-Rüddel; Peter Schlattmann; Mathias Pletz; Oliver Kurzai; Frank Bloos
Journal:  Chest       Date:  2021-10-18       Impact factor: 9.410

6.  (1 → 3)-β-D-Glucan-guided antifungal therapy in adults with sepsis: the CandiSep randomized clinical trial.

Authors:  Frank Bloos; Jürgen Held; Stefan Kluge; Philipp Simon; Klaus Kogelmann; Geraldine de Heer; Sven-Olaf Kuhn; Dominik Jarczak; Johann Motsch; Gunther Hempel; Norbert Weiler; Andreas Weyland; Matthias Drüner; Matthias Gründling; Patrick Meybohm; Daniel Richter; Ulrich Jaschinski; Onnen Moerer; Ulf Günther; Dirk Schädler; Raphael Weiss; Christian Putensen; Ixchel Castellanos; Oliver Kurzai; Peter Schlattmann; Oliver A Cornely; Michael Bauer; Daniel Thomas-Rüddel
Journal:  Intensive Care Med       Date:  2022-06-16       Impact factor: 41.787

Review 7.  The Changing Landscape of Invasive Fungal Infections in ICUs: A Need for Risk Stratification to Better Target Antifungal Drugs and the Threat of Resistance.

Authors:  Julien Poissy; Anahita Rouzé; Marjorie Cornu; Saad Nseir; Boualem Sendid
Journal:  J Fungi (Basel)       Date:  2022-09-09

8.  Sensitivity of Serum Beta-D-Glucan in Candidemia According to Candida Species Epidemiology in Critically Ill Patients Admitted to the Intensive Care Unit.

Authors:  Malgorzata Mikulska; Laura Magnasco; Alessio Signori; Chiara Sepulcri; Silvia Dettori; Stefania Tutino; Antonio Vena; Franca Miletich; Nadir Ullah; Paola Morici; Lorenzo Ball; Paolo Pelosi; Anna Marchese; Daniele Roberto Giacobbe; Matteo Bassetti
Journal:  J Fungi (Basel)       Date:  2022-08-30

9.  Combined Use of Presepsin and (1,3)-β-D-glucan as Biomarkers for Diagnosing Candida Sepsis and Monitoring the Effectiveness of Treatment in Critically Ill Patients.

Authors:  Radim Dobiáš; Marcela Káňová; Naděžda Petejová; Štefan Kis Pisti; Robert Bocek; Eva Krejčí; Helena Stružková; Michaela Cachová; Hana Tomášková; Petr Hamal; Vladimír Havlíček; Milan Raška
Journal:  J Fungi (Basel)       Date:  2022-03-17
  9 in total

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