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Article

Airborne Culturable Fungi in the Indoor and Outdoor Environments of Shrines in Chennai, India

by
Sripriya Nannu Shankar
1,2,
Bhuvaneswari Srinivasan
3 and
Udaya Prakash Nyayiru Kannaian
1,4,*
1
R&D, Marina Labs, Chennai 600107, India
2
Department of Environmental & Public Health Sciences, University of Cincinnati, Cincinnati, OH 45267, USA
3
Department of Botany, Bharathi Women’s College, Chennai 600108, India
4
Department of Biotechnology, Vels Institute of Science, Technology and Advanced Studies, Chennai 600117, India
*
Author to whom correspondence should be addressed.
Atmosphere 2024, 15(7), 754; https://doi.org/10.3390/atmos15070754
Submission received: 10 May 2024 / Revised: 17 June 2024 / Accepted: 20 June 2024 / Published: 24 June 2024
(This article belongs to the Special Issue Health Impacts Related to Indoor Air Pollutants)

Abstract

:
The diversity and concentrations of airborne fungi in the environments of 58 temples across a metropolitan city (Chennai) in India were investigated. Air samples from indoors (within 2 m of the Sanctum sanctorum) and outdoors (at least 10 m away from the Sanctum sanctorum) were collected using the Reuter Centrifugal Sampler (RCS). Of the 90 species isolated, 7 belonged to Zygomycota, 5 to Ascomycota and the remaining 78 to Mitosporic fungi. A total of 3470 colonies were isolated from the indoor environment, which was 13.73% higher than the total recorded outdoors (3051 colonies). An average of 747.7 and 657.5 CFU/m3 of air was recorded in the indoor and outdoor environments, respectively. The predominant species identified in both environments were Aspergillus flavus, A. niger and Cladosporium cladosporioides. While most of the fungal species isolated are considered allergens and pathogens, they can also deteriorate the architecture of shrines. This study indicates the need to implement control measures to minimize the risks of exposure to bioaerosols in public spaces such as shrines.

1. Introduction

Shrines are religious or sacred spaces dedicated to the worship of deities, ancestors or revered figures. While the specifics of shrines vary, they play a crucial role in providing a physical space for spiritual practices, fostering a sense of community and preserving cultural and religious heritage. The architecture and etiquette followed in each shrine vary according to the religion, country, period of construction, etc. Within a shrine, there can be several structures, each designed for a different purpose. Among those, the Sanctum sanctorum is considered the most holy, with its access often limited to fewer people such as priests and staff. Worshippers typically congregate near a Sanctum sanctorum to worship deities and also spend time in other areas within the shrine. Environmental parameters (such as temperature, moisture and dampness), organic material used in shrines (such as flowers and fruits), deteriorating structures, other substrates (such as wooden objects), etc., can promote microbial proliferation in indoor environments. Among the microbes that are airborne, fungi and their metabolites (including mycotoxins) are associated with several respiratory ailments, including asthma, allergies, rhinitis, allergic bronchopulmonary mycoses, allergic fungal sinusitis, hypersensitivity pneumonitis, cancer, genotoxicity, mutagenicity, etc. [1,2,3,4,5]. Aside from their impact on public health, fungi can also lead to the deterioration of structures, depending on the environment [6,7]. For example, fungal species were found to deteriorate manuscripts in shrines [8,9], paintings and the surfaces of structures and walls [10].
From our literature search, there have been very few studies focused on the concentrations of fungi in shrines across the globe, and they are vastly different. The mean concentrations of fungi in a Polish shrine ranged from 191 to 3237 CFU/m3 of air [11], while the fungal concentrations in a Malaysian shrine ranged between 118 and 660 CFU/m3 of air [12]. In a study conducted in a Korean shrine, the diversity of fungi differed drastically between indoor (19 genera) and outdoor (35 genera) environments, and the overall fungal load varied seasonally [13]. Similarly, the mean concentrations of fungi in the outdoor environment of a shrine in Saudi Arabia were higher than those indoors [14]. If the air exchange rates are high and the filter efficiency is poor, microbial concentrations can be similar in both indoor and outdoor environments [15]. Therefore, it is important to monitor diversity indoors and outdoors to enable proper recommendations to minimize exposure to bioaerosols. Moreover, shrines in India vary from those in other countries due to several factors including geography, the architecture of the building, environmental parameters, etc., which drive the need to monitor these environments.
This study focused on the diversity of airborne fungi across 58 shrines in southern India. Furthermore, the variations in total mean concentrations and diversity between the indoor and outdoor environments of shrines are reported.

2. Materials and Methods

2.1. Sampling Sites

Chennai (latitude 13.0827° N, longitude 80.2707° E) is one of the major metropolitan cities in India, with over 500 shrines corresponding to different religions. In this study, 58 shrines across Chennai were monitored for the presence of viable, airborne fungi. Samples from the indoor environments were collected within 2 m of the Sanctum sanctorum and the outdoor samples were collected at least 10 m away from the Sanctum sanctorum of each temple. Samples were collected in the evenings (after 4 pm IST) since people typically visit shrines during that time. In each shrine, air sampling was collected only once, as permitted. The locations of temples (names de-identified) where the air samples were collected are represented in Figure 1. At the time of conducting the experiments, there were ~3–10 people in the Sanctum sanctorum and ~10–95 people in the outdoor environment.

2.2. Air Sampling

Sterile air sampler strips (HiMedia, Mumbai, India) were loaded with sterile potato dextrose agar (PDA) amended with streptomycin under aseptic conditions in the laboratory [16]. The strips were then sealed in sterile pouches until they were inserted into the sampler at the sampling site, prior to the collection of air. A portable volumetric sampler, the Reuter Centrifugal Sampler (RCS) (Biotest AG, Dreieich, Germany), was used to collect air samples at 40 L of air per min (i.e., 0.04 m3 of air per min). The sampler, which collects particles by centrifugal force through an impeller and impacts particles on an agar strip, was held ~1.5–2 m from the ground by trained personnel and operated for 2 min. Before and after each sampling in the field, the sampler was disinfected with 70% alcohol and dried with sterile wipes. The exposed strips were sealed and transported to the laboratory in sterile, sealed pouches. The fungal colonies developed upon incubation of the exposed strips at room temperature (28 ± 2 °C) for 4–5 days were then counted. Identification of the fungal species was based on the morphological and microscopical features with reference to standard manuals [17,18,19,20].

2.3. Data Analyses

The following formulae were used to determine the average number of fungal colonies formed per cubic meter (CFU/m3) of air, percent contribution and isolation frequencies [21]:
Colony   forming units / m 3 of   air = Number   of   colonies Flow   rate   of   the   sampler   m 3 / min × Sampling   time   ( min )
Percent   contribution = Total   CFU / m 3   of   an   individual   species Total   CFU / m 3   of   all   species × 100
Isolation   frequency =   Number   of   samples   in   which   a   species   was   recorded   Total   number   of   samples × 100
The following biodiversity indices were measured to weigh the richness, evenness and distribution of the communities:
The Simpson index (D) measures the probability that any 2 individuals drawn at random from a community will be the same species. The higher the score, the more diverse the community is [22].
D = 1 i = 1 S Pi 2
The Margalef index (DMA) was used as a simple measure of species richness—a higher Margalef index value indicates greater species richness or diversity [23].
D MA = S 1 ln N
The Pielou evenness index (J) represents the relative diversity, i.e., the ratio of diversity observed with observable maximum diversity with the same number of species, which is also the degree of equality in species abundance in a given sample [24].
J = H ln S
The Berger–Parker (Reciprocal) index (d) expresses the proportional abundance of the most abundant species—an increase in the value of the index accompanies an increase in diversity and a reduction in dominance [25].
1 / d = N N max
To compare community similarities (i.e., indoor and outdoor environments of shrines), Sorenson’s coefficient (CC) was calculated. Complete community overlap is represented by a value of 1, while complete community dissimilarity is equal to 0 [26].
CC = 2 C S 1 + S 2
In Equations (4)–(8), Pi represents the fraction of the entire population made up of “i” species; S is species richness; H is the Shannon diversity index; Nmax is the number of individuals in the most abundant species; N represents the total number of species in the sample; C represents the number of similar species in both the settings (i.e., indoor and outdoor); S1 is the number of species indoors; and S2 is the number of species outdoors. One-way ANOVA and Chi square tests for CFU/m3 of species recorded in the indoor and outdoor environments were conducted at a significance level of 5% using GraphPad Prism (version 8.0.0).

3. Results

A total of 3470 and 3051 colonies were isolated from the indoor and outdoor environments of the shrines, respectively. The isolated colonies were classified into 90 species belonging to 46 genera, in addition to yeast and non-sporulating colonies. The isolated species belonged to three taxonomic groups, viz., Zygomycota (7 species), Ascomycota (5 species) and Mitosporic fungi (78 species), accounting for 7.78, 5.56 and 86.67% of the total species, respectively.
Among the genera isolated, Aspergillus was represented by 13 spp., followed by Penicillium (8 spp.), Curvularia (6 spp.), Cladosporium (5 spp.) and Acremonium (4 spp.). Drechslera and Monodictys were represented by three species, and the genera Cunninghamella, Chaetomium, Chrysosporium, Fusarium, Gilmaniella, Nigrospora, Scopulariopsis, Trichoderma and Ulocladium were represented by two species each. The list of fungal species isolated and their concentrations, percent contributions and isolation frequencies are presented in Table 1. The average concentrations and percent contributions of the dominant species are presented in Figure 2 and Figure 3, respectively.
Irrespective of the site within a shrine (i.e., indoor or outdoor), the diversity of fungi was found to be rich, as analyzed by the Simpson index of diversity and Berger–Parker dominance. Overall, the total average concentration in the outdoor environments was 657.5 CFU/m3, which was ~88% of that recorded indoors (747.7 CFU/m3). A significant difference was observed for the concentrations of fungal species isolated in the indoor and outdoor environments, with a p-value less than 0.0001 according to the Chi-square test and one-way ANOVA (R2 = 0.9946). Aspergillus flavus was found to be the dominant species in both indoor and outdoor environments. This fungus alone recorded an average of 341.3 CFU/m3 (45.72% to the total) and 309.9 CFU/m3 (46.99% to the total) in indoor and outdoor environments, respectively. Aspergillus flavus, A. niger and Cladosporium cladosporioides had respective average concentrations of 341.39, 172 and 28.88 CFU/m3 in the indoor environments, while they were 309.9, 149.1 and 19.83 CFU/m3 in the outdoor environments. The average concentration of yeast colonies was 57.3 CFU/m3 indoors, while it was 28.2 CFU/m3 outdoors. Non-sporulating colonies accounted for 25.4 and 20.7 CFU/m3 in the indoor and outdoor environments, respectively.
Within the indoor environments, 70 species belonging to 38 genera were recorded in total, while 63 species (belonging to 33 genera) were recorded in outdoor environments. The Pielou evenness index showed moderate evenness between the indoor and outdoor environments, while the similarity between these environments was 0.65 according to the Sorenson coefficient. As can be seen in Table 1, 27 species were unique to the indoor environments, 20 were unique to the outdoor environments and 43 species were common to both.
Among the species identified, Aspergillus niger, A. flavus and Emericella nidulans were isolated from 82.75, 79.31 and 53.44% of the air samples collected from the indoor environment, whereas A. niger, A. flavus and Cladosporium cladosporioides were prevalent in the outdoor environments, with isolation frequencies of 89.65, 74.13 and 34.48%, respectively. According to the Margalef index, the species richness was comparatively higher in indoor environments than outdoors. The values for the statistical indices calculated in the indoor and outdoor environments of the species isolated are presented in Table 2.

4. Discussion

Studies on airborne fungi in shrines, though rare, provide information on exposure risks that is critical for public health. In this study, 90 species of viable airborne fungi were isolated from the indoor and outdoor environments of 58 shrines across Chennai city in India, which, to our knowledge, is the largest number to be reported in places of worship. Previously, six fungal species were isolated from air samples collected using a liquid impinger operated at 0.25 L/min in the indoor and outdoor environments of a shrine in India [27]. Using the Burkard volumetric sampler, 12 species were isolated from five other Indian shrines [28]. The use of the RCS is a significant advantage in this study, as the RCS can be operated at a high flow rate (40 L/min), while also being portable. The performance of the RCS in collecting bioaerosols has been compared with that of other portable air samplers such as the Andersen cascade impactor [29,30], BioStage impactor [31], slit-to-agar air sampler [32], Air-O-cell sampler [33], membrane filter [34], slit and SAS samplers [35], BioSampler, electrostatic sampler, gelatin filter, mixed cellulose ester filter and gravitational settling methods [36]. However, it is inconclusive as to which sampler is superior for bioaerosol collection since several factors, such as the sampler flow rate, sampling time, aerosol concentrations, medium characteristics (such as moisture retention), particle bounce, sampling environment, etc., can influence the collection efficiency. Nevertheless, most of the studies that used the RCS acknowledge these advantages—portability, no requirement of an external power source (battery operated), ease of disinfection and less noise [29,30,31,32,33,34,35,36]. These features favored the use of the RCS in this study.
In the indoor environments of shrines, a higher average CFU/m3 of air could be attributed to (1) the presence of organic substances (such as flowers, fruits, etc.); (2) microenvironments (like moisture, temperature and humidity); and (3) low air exchange with the outdoors (since the indoor spaces were mostly concealed). Among the fungi isolated, the genera Aspergillus and Penicillium accounted to about 74% of the total. The abundance of the genera Aspergillus and Penicillium has been reported in different indoor environments [37,38,39]. Of the species belonging to Aspergillus, A. flavus and A. niger were present in over 75% of the samples collected in this study. The inhalation of such species can lead to Aspergillosis [40], allergic rhinitis, allergic alveolitis, bronchitis and asthma [41], and it can also impact the gut microflora [42]. Moreover, certain species of fungi produce toxins (for example, aflatoxins produced by A. flavus) which can also cause health issues such as cancer, genotoxicity, mutagenicity, etc. [3,4,5]. Fungi belonging to Zygomycetes; yeasts; and species of Cladosporium, Chrysosporium and Ulocladium were also found to be higher in the indoor environment than outdoors. These fungi have been reported as damp-loving fungi [43]. In general, the volatile organic compounds released by fungi in microclimatic environments are found to cause various health effects like dizziness, headaches, and an inability to concentrate [44]. Aside from inhalation, dermal contact to fungi also has health effects. In this study, keratinophiles (such as Chrysosporium tropicum, Scopulariopsis brevicaulis and S. brumptii) and dermatophytes (such as M. nanum, S. schenkii and T. mentagraphytes) were also isolated from a few samples. Diagnosing and treating dermatophyte infections is usually challenging [45], and the air sampling approach as followed in this study can serve as a non-invasive approach for screening environments that pose risks of exposure to dermatophyte infections. Aside from health effects, airborne fungi can also degrade or deteriorate paintings and sculptural artifacts, subsequently affecting the aesthetics of shrines [46].
Among the colonies isolated, 47.7% (43 species) of fungal species were found in both indoor and outdoor environments, which suggests low air change rates within shrines, though details on HVAC systems or air change rates were unavailable. Nevertheless, enhancing the ventilation by using air purifiers as needed for the area, maintaining the cleanliness of the shrines, maintaining the temperature and humidity as needed (by using an air conditioning system and humidifier/dehumidifier, respectively) and limiting the number of people and their mobility visiting shrines at a given time are recommended. It is also important to minimize the use of materials that contribute to dampness and excess moisture in indoor environments, as they can initiate the deterioration of materials and lead to the proliferation of microbes [47]. In addition, personal protective measures such as wearing masks, using hand sanitizers, minimizing exposure duration, etc., are ways to protect the priests and staff of the shrines, as well as the visitors.
This study has certain limitations. Firstly, non-culturable fungal spores and certain fungi belonging to Ascomycota and Basidiomycota did not form spores in the nutrient medium used in this study. Therefore, they were classified as non-sporulating colonies. Due to resource limitations, it was not possible to identify specific species of yeasts cultured, and hence, they were broadly grouped as yeast colonies. Also, the yeast/fungi that could have been inactivated during sample collection remain unknown. Future studies on identification by whole-genome sequencing would provide information on the microbiome of a sample. Secondly, neither measurement of the aerosol size distribution nor the size-fractionated collection of particles containing fungi/fungal spores were conducted in this study. Pairing aerosol measurement devices with air samplers capable of collecting size-fractionated particles could provide information on the transport and fate of particles in the air as well as potential respiratory deposition pattern. Thirdly, the results presented in this study cannot be generalized to all shrines in India or elsewhere in the world, since the collection and isolation of fungi depends on several factors such as the source, architecture of the building, wind speed, air sampler used, nutrient medium used for culturing and environmental parameters (such as temperature, relative humidity, etc.). Changes in any of these parameters may lead to results different from those presented in this study. Nevertheless, the study provides insights into the fungal diversity and concentrations in 58 different shrines and the significance of implementing suitable measures to minimize bioaerosol exposures in such public spaces.

Author Contributions

Conceptualization, S.N.S. and B.S.; methodology, S.N.S. and U.P.N.K.; formal analysis and investigation, S.N.S.; writing—original draft preparation, S.N.S.; writing—review and editing, S.N.S., U.P.N.K. and B.S.; supervision, U.P.N.K. and B.S.; funding acquisition, U.P.N.K. All authors have read and agreed to the published version of the manuscript.

Funding

This research was funded by R&D, Marina Labs, grant number ML-2017-RD001.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Data Availability Statement

The original contributions presented in the study are included in the article; further inquiries can be directed to the corresponding author. The data are not publicly available due to privacy.

Acknowledgments

The authors thank Tirumala Tirupati Devasthanam, Chennai and the management of other shrines in Tamil Nadu, for their coordination in conducting the study.

Conflicts of Interest

The authors declare no conflicts of interest. The funder had no role in the design of the study; in the collection, analyses, or interpretation of data; in the writing of the manuscript; or in the decision to publish the results.

References

  1. Baxi, S.N.; Portnoy, J.M.; Larenas-Linnemann, D.; Phipatanakul, W.; Barnes, C.; Baxi, S.; Scott, J.; Williams, P.B. Exposure and health effects of fungi on humans. J. Allergy Clin. Immunol. Pract. 2016, 4, 396–404. [Google Scholar] [CrossRef] [PubMed]
  2. Fischer, G.; Dott, W. Relevance of airborne fungi and their secondary metabolites for environmental, occupational and indoor hygiene. Arch. Microbiol. 2003, 179, 75–82. [Google Scholar] [CrossRef] [PubMed]
  3. Ekwomadu, T.; Mwanza, M.; Musekiwa, A. Mycotoxin-linked mutations and cancer risk: A global health issue. Int. J. Environ. Res. Public Health 2022, 19, 7754. [Google Scholar] [CrossRef] [PubMed]
  4. Habschied, K.; Kanižai Šarić, G.; Krstanović, V.; Mastanjević, K. Mycotoxins—Biomonitoring and human exposure. Toxins 2021, 13, 113. [Google Scholar] [CrossRef] [PubMed]
  5. Adaku Chilaka, C.; Mally, A. Mycotoxin occurrence, exposure and health implications in infants and young children in Sub-Saharan Africa: A review. Foods 2020, 9, 1585. [Google Scholar] [CrossRef] [PubMed]
  6. Ahmed, T.; Usman, M.; Scholz, M. Biodeterioration of buildings and public health implications caused by indoor air pollution. Indoor Built Environ. 2018, 27, 752–765. [Google Scholar] [CrossRef]
  7. Rojas, T.I.; Aira, M.J.; Batista, A.; Cruz, I.L.; González, S. Fungal biodeterioration in historic buildings of Havana (Cuba). Grana 2012, 51, 44–51. [Google Scholar] [CrossRef]
  8. Al-Gharawi, H.J.; Jeaz, E.T. Isolation and identification of contaminated fungi of books and manuscripts in the libraries of a number of Iraqi universities and holy sites. Plant Arch. 2019, 19, 2359–2362. [Google Scholar]
  9. Mohammed, B.T.; Dakhil, M.H.; Lmutairy, T. Manuscripts preserved at the Al-Hussein Holy shrine: Isolation and diagnosis of fungi causing potential damage. Indian J. Ecol. 2018, 45, 214–221. [Google Scholar]
  10. Grbić, M.L.; Dimkić, I.; Savković, Ž.; Stupar, M.; Knežević, A.; Jelikić, A.; Unković, N. Mycobiome Diversity of the Cave Church of Sts. Peter and Paul in Serbia—Risk Assessment Implication for the Conservation of Rare Cavern Habitat Housing a Peculiar Fresco Painting. J. Fungi 2022, 8, 1263. [Google Scholar] [CrossRef]
  11. Chmiel, M.; Kral, I.; Lenart-Boroń, A. Concentration and size distribution of microbial aerosol in the historical objects in Kraków as a potential health risk and biodeterioration factor. Aerobiologia 2019, 35, 743–758. [Google Scholar] [CrossRef]
  12. Rasli, N.B.I.; Ramli, N.A.; Ismail, M.R.; Shith, S.; Yusof, N.F.F.M.; Zainordin, N.S.; El-Bayoumi, M.; Nazir, A.U.M. Effects of hoovering activities on biological contaminants and particulate matter levels in main prayer halls of Malaysian mosques. Curr. World Environ. 2017, 14, 134. [Google Scholar]
  13. Hong, J.Y.; Kim, Y.H.; Lee, J.M.; Kim, S.J.; Jo, C.W.; Park, J.H. Seasonal distribution and diversity of airborne fungi in a wooden cultural heritage site: A case study of the Seonamsa temple, Suncheon. Korean J. Mycol. 2018, 46, 122–133. [Google Scholar]
  14. Mashat, B. Indoor and outdoor microbial aerosols at the holy mosque: A case study. Atmos. Pollut. Res. 2015, 6, 990–996. [Google Scholar] [CrossRef]
  15. Adams, R.I.; Bhangar, S.; Pasut, W.; Arens, E.A.; Taylor, J.W.; Lindow, S.E.; Nazaroff, W.W.; Bruns, T.D. Chamber bioaerosol study: Outdoor air and human occupants as sources of indoor airborne microbes. PLoS ONE 2015, 10, e0128022. [Google Scholar] [CrossRef]
  16. Srinivasan, B.; Sundaram, I.; Farshana, F.; Nyayiru Kannaian, U.P. A preliminary investigation on airborne fungi of pedestrian underpasses. Aerobiologia 2021, 37, 71–78. [Google Scholar] [CrossRef]
  17. Subramanian, C.V. Hyphomycetes; Indian Council of Agricultural Research: New Delhi, India, 1971; p. 930. [Google Scholar]
  18. Ellis, M.B. Dematiaceous Hyphomycetes; Commonwealth Mycological Institute: Surrey, UK, 1971; p. 507. [Google Scholar]
  19. Onions, A.H.S.; Allsopp, D.; Eggins, H.O.W. Smith’s. Introduction to Industrial Mycology, 7th ed.; Edward Arnold: London, UK, 1981; p. 372. [Google Scholar]
  20. Udayaprakash, N.K. Indoor Molds: Isolation and Identification; Color Wings (M) Pvt. Ltd.: Chennai, India, 2004; p. 99. [Google Scholar]
  21. Prakash, N.K.U.; Bhuvaneswari, S.; Ranjith Kumar, M.; Lankesh, S.; Rupesh, K. A study on the prevalence of indoor mycoflora in air-conditioned buses. Br. Microbiol. Res. J. 2014, 4, 282–292. [Google Scholar] [CrossRef]
  22. Fedor, P.; Zvaríková, M. Biodiversity indices. Encycl. Ecol. 2019, 2, 337–346. [Google Scholar]
  23. Kitikidou, K.; Milios, E.; Stampoulidis, A.; Pipinis, E.; Radoglou, K. Using Biodiversity Indices Effectively: Considerations for Forest Management. Ecologies 2024, 5, 42–51. [Google Scholar] [CrossRef]
  24. Bandeira, B.; Jamet, J.L.; Jamet, D.; Ginoux, J.M. Mathematical convergences of biodiversity indices. Ecol. Indic. 2013, 29, 522–528. [Google Scholar] [CrossRef]
  25. Magurran, A.E. Measuring Biological Diversity; Blackwell Publishing: London, UK, 2004. [Google Scholar]
  26. Archetypalecology. Biodiversity. Indices, Concepts and R Implementations (In Progress). 2018. Available online: https://archetypalecology.wordpress.com/2018/02/20/biodiversity-indices-concepts-and-r-implementations-in-progress/ (accessed on 8 January 2024).
  27. Mehta, S.; Kambli, P.; Wani, K.; Tanavde, S.; Mirgal, S.; Kelkar-Mane, V.; Kumar, R. Study of bio-aerosols in a prominent temple in Mumbai City, India. Int. J. Environ. Stud. 2013, 70, 583. [Google Scholar] [CrossRef]
  28. Nayak, B.K. A preliminary study of airborne fungal spores in few temples of Pondicherry. Int. J. PharmTech Res. 2015, 8, 300–305. [Google Scholar]
  29. Wüst, G.; Friedl, H.; Haas, D.; Köck, M.; Pichler-Semmelrock, F.; Reinthaler, F.; Schlacher, R.; Marth, E. A comparison between Andersen (ACFM) and Reuter Centrifugal Sampler (RCS-plus) for indoor sampling of airborne molds. Aerobiologia 2003, 19, 125–128. [Google Scholar] [CrossRef]
  30. Kang, Y.J.; Frank, J.F. Comparison of airborne microflora collected by the Andersen sieve sampler and RCS sampler in a dairy processing plant. J. Food Prot. 1989, 52, 877–880. [Google Scholar] [CrossRef] [PubMed]
  31. Zhen, S.; Li, K.; Yin, L.; Yao, M.; Zhang, H.; Chen, L.; Zhou, M.; Chen, X. A comparison of the efficiencies of a portable BioStage impactor and a Reuter centrifugal sampler (RCS) High Flow for measuring airborne bacteria and fungi concentrations. J. Aerosol. Sci. 2009, 40, 503–513. [Google Scholar] [CrossRef]
  32. Placencia, A.M.; Peeler, J.T.; Oxborrow, G.S.; Danielson, J.W. Comparison of bacterial recovery by Reuter centrifugal air sampler and slit-to-agar sampler. Appl. Environ. Microbiol. 1982, 44, 512–513. [Google Scholar] [CrossRef] [PubMed]
  33. Lee, K.S.; Bartlett, K.H.; Brauer, M.; Stephens, G.M.; Black, W.A.; Teschke, K. A field comparison of four samplers for enumerating fungal aerosols I. Sampling characteristics. Indoor Air 2004, 14, 360–366. [Google Scholar] [CrossRef] [PubMed]
  34. Bonadonna, L.; Marconi, A. A comparison of two air samplers for recovery of indoor bioaerosols. Aerobiologia 1994, 10, 153–156. [Google Scholar] [CrossRef]
  35. Smid, T.; Schokkin, E.; Boleij, J.S.; Heederik, D. Enumeration of viable fungi in occupational environments: A comparison of samplers and media. Am. Ind. Hyg. Assoc. J. 1989, 50, 235–239. [Google Scholar] [CrossRef] [PubMed]
  36. Xu, Z.; Yao, M. Analysis of culturable bacterial and fungal aerosol diversity obtained using different samplers and culturing methods. Aerosol Sci. Technol. 2011, 45, 1143–1153. [Google Scholar] [CrossRef]
  37. Pavan, R.; Manjunath, K. Qualitative analysis of indoor and outdoor airborne fungi in cowshed. J. Mycol. 2014, 2014, 985921. [Google Scholar] [CrossRef]
  38. Micheluz, A.; Manente, S.; Prigione, V.; Tigini, V.; Varese, G.C.; Ravagnan, G. The effects of book disinfection to the airborne microbiological community in a library environment. Aerobiologia 2018, 34, 29–44. [Google Scholar] [CrossRef]
  39. Sivagnanasundaram, P.; Amarasekara, R.W.K.; Madegedara, R.M.D.; Ekanayake, A.; Magana-Arachchi, D.N. Assessment of airborne bacterial and fungal communities in selected areas of teaching hospital, Kandy, Sri Lanka. BioMed Res. Int. 2019, 2019, 7393926. [Google Scholar] [CrossRef]
  40. Schweer, K.E.; Jakob, B.; Liss, B.; Christ, H.; Fischer, G.; Vehreschild, M.J.G.T.; Cornely, O.A.; Vehreschild, J.J. Domestic mould exposure and invasive aspergillosis—Air sampling of Aspergillus spp. Spores in homes of hematological patients, a pilot study. Med. Mycol. 2016, 54, 576–583. [Google Scholar] [CrossRef] [PubMed]
  41. Hurrass, J.; Heinzow, B.; Aurbach, U.; Bergmann, K.C.; Bufe, A.; Buzina, W.; Nowak, D.; Wiesmüller, G.A. Medical diagnostics for indoor mold exposure. Int. J. Hyg. Environ. Health 2017, 220, 305–328. [Google Scholar] [CrossRef]
  42. Liew, W.P.P.; Mohd-Redzwan, S. Mycotoxin: Its impact on gut health and microbiota. Front. Cell. Infect. Microbiol. 2018, 8, 60. [Google Scholar] [CrossRef] [PubMed]
  43. Nevalainen, A.; Täubel, M.; Hyvärinen, A. Indoor fungi: Companions and contaminants. Indoor Air 2015, 25, 125–156. [Google Scholar] [CrossRef] [PubMed]
  44. Korpi, A.; Järnberg, J.; Pasanen, A.L. Microbial volatile organic compounds. Crit. Rev. Toxicol. 2009, 39, 139–193. [Google Scholar] [CrossRef] [PubMed]
  45. Gnat, S.; Łagowski, D.; Nowakiewicz, A. Major challenges and perspectives in the diagnostics and treatment of dermatophyte infections. J. Appl. Microbiol. 2020, 129, 212–232. [Google Scholar] [CrossRef]
  46. Sterflinger, K.; Pinzari, F. The revenge of time: Fungal deterioration of cultural heritage with particular reference to books, paper and parchment. Environ. Microbiol. 2012, 14, 559–566. [Google Scholar] [CrossRef]
  47. Heseltine, E.; Rosen, J. (Eds.) WHO Guidelines for Indoor Air Quality: Dampness and Mould; WHO Regional Office: Geneva, Switzerland, 2009. [Google Scholar]
Figure 1. Map showing the shrines (as orange pins) where the samples were collected. (Visualization created on Google My Maps).
Figure 1. Map showing the shrines (as orange pins) where the samples were collected. (Visualization created on Google My Maps).
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Figure 2. Average fungal concentrations recorded for the dominant species isolated from air samples of indoor and outdoor environments of shrines.
Figure 2. Average fungal concentrations recorded for the dominant species isolated from air samples of indoor and outdoor environments of shrines.
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Figure 3. Percent contributions of the dominant species isolated from the air samples of indoor and outdoor environments of shrines.
Figure 3. Percent contributions of the dominant species isolated from the air samples of indoor and outdoor environments of shrines.
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Table 1. List of airborne fungal species isolated and their average CFU/m3 of air, percent contribution (PC) and percent isolation frequencies (PIFs) recorded in indoor and outdoor environments of shrines.
Table 1. List of airborne fungal species isolated and their average CFU/m3 of air, percent contribution (PC) and percent isolation frequencies (PIFs) recorded in indoor and outdoor environments of shrines.
SpeciesINDOOROUTDOOR
CFU/m3PCPIFCFU/m3PCPIF
Zygomycota
Circinella umbellata0.220.031.72000
Cunninghamella echinulata1.080.141.72000
C. elegans0.220.031.72000
Lichtheimia corymbifera0.860.111.72000
Mucor racemosus6.030.8112.061.290.203.44
Rhizopus stolonifer0.650.091.720.430.071.72
Syncephalastrum racemosum0.220.031.723.020.463.44
Ascomycota
Chaetomium globosum0.650.095.170.220.031.72
Chaetomium sp.0000.430.073.44
Emericella nidulans12.071.6253.4418.972.8832.75
Sporormiella intermedia0000.430.071.72
Talaromycespurpureogenus0000.220.031.72
Mitosporic fungi
Coelomycetes
Phoma glomerata1.290.171.721.290.201.72
Hyphomycetes
Acremonium blochii0.220.031.72000
A. hyalinulum0000.430.071.72
A. falciforme0.220.031.72000
A. strictum0.220.031.722.150.335.1
Alternaria alternata0.860.125.171.720.2610.32
Arthrinium phaeospermum1.080.141.72000
Aspergillus clavatus0000.430.073.44
A. flavus341.3945.7379.31309.946.9974.13
A. fumigatus1.720.236.894.740.725.17
A. glaucus0.220.031.72000
A. japonicus9.691.3017.2412.061.8420.68
A. nidulans2.370.326.899.691.476.89
A. niger17223.0382.75149.122.6189.65
A. ochraceous0.650.091.722.370.366.89
A. restrictus0.650.093.440.430.071.72
A. sydowii0.220.031.72000
A. tamarii5.170.6917.242.370.365.17
A. terreus14.871.9937.937.331.1131.03
A. versicolor0001.510.236.89
Aureobasidium pullulans2.800.388.621.290.2010.34
Chrysonilia sitophila0.430.063.440.650.368.62
Chrysosporium pannorum0.220.031.721.940.291.72
C. tropicum0.860.121.72000
Cladosporium chlorocephalum0000.860.131.72
C. cladosporioides28.883.8732.7519.833.0134.48
C. herbarum1.940.265.170.430.073.44
C. oxysporum1.080.141.721.720.263.44
C. sphaerospermum5.170.6918.962.160.3310.34
Curvularia brachyspora2.590.358.691.940.293.44
C. clavata1.510.2010.343.660.5610.34
C. eragrostidis0001.510.233.44
C. lunata9.271.2427.867.541.1422.41
C. pallescens0.220.031.72000
C. pennisetti0000.650.201.72
Drechslera australiensis2.370.3210.342.160.3310.34
D. halodes0.430.061.721.080.163.44
D. hawaiiensis0.430.063.440.220.031.72
Fusarium moniliforme0.430.063.44000
F. oxysporum10.561.4117.246.470.986.89
Geomyces pannorum1.290.171.72000
Gilmaniella humicola0.430.061.721.290.203.44
Gilmaniella sp.0000.650.101.72
Humicola grisea0.650.093.441.510.248.69
Memnoniella echinata0.430.061.720.220.031.72
Microsporum nanum0.220.031.72000
Moniliella suaveolens0.220.031.72000
Monodictys castaneae0.430.063.440.220.031.72
M. glauca0.220.031.72000
M. levis0000.430.071.72
Nigrospora orzyae0000.220.031.72
N. sphaerica0001.080.171.72
Paecilomyces variotii1.510.203.440.220.073.44
Penicillium chrysogenum0.220.063.440.220.031.72
P. citrinum1.080.208.624.740.7220.68
P. digitatum0.860.031.720.220.031.72
P. funiculosum1.080.146.892.160.336.89
P. oxalicum0.220.123.446.470.9813.79
P. polonicum0000.220.031.72
P. variabile0.220.031.72000
P. verruculosum0000.650.103.44
Periconiella smilais0000.430.071.72
Periconia byssoides0000.220.031.72
Scolecobasidium humicola0.220.031.72000
Scopulariopsis brevicaulis0.220.031.72000
S. brumptii00.031.72000
Spegazzinia labulata0.220.031.72000
Sporothrix schenckii0.220.031.72000
Stachybotrys atra0000.220.031.72
Thielaviopsis paradoxa0.220.031.72000
Torula graminis0000.220.031.72
Trichocladium canadense0.220.031.72000
Trichoderma harzianum6.680.891.72000
T. viride0.860.123.441.940.295.17
Trichometasphaeria holmii0000.220.031.72
Trichophyton mentagrophytes0.430.061.72000
Ulocladium botrytis0.220.031.720.220.031.72
U. chartarum0.430.061.72000
Yeast colonies57.337.6834.4828.234.2831.03
Non-sporulating colonies25.433.4139.6520.693.1444.82
Table 2. Biodiversity indices of the airborne mycoflora in shrines.
Table 2. Biodiversity indices of the airborne mycoflora in shrines.
Biodiversity IndexIndoorOutdoor
Simpson index of diversity0.72780.7222
Margalef index8.46617.7247
Pielou evenness index0.46390.4916
Berger–Parker Dominance (Reciprocal)2.18692.128
Sorenson coefficient0.6466
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Nannu Shankar, S.; Srinivasan, B.; Nyayiru Kannaian, U.P. Airborne Culturable Fungi in the Indoor and Outdoor Environments of Shrines in Chennai, India. Atmosphere 2024, 15, 754. https://doi.org/10.3390/atmos15070754

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Nannu Shankar S, Srinivasan B, Nyayiru Kannaian UP. Airborne Culturable Fungi in the Indoor and Outdoor Environments of Shrines in Chennai, India. Atmosphere. 2024; 15(7):754. https://doi.org/10.3390/atmos15070754

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Nannu Shankar, Sripriya, Bhuvaneswari Srinivasan, and Udaya Prakash Nyayiru Kannaian. 2024. "Airborne Culturable Fungi in the Indoor and Outdoor Environments of Shrines in Chennai, India" Atmosphere 15, no. 7: 754. https://doi.org/10.3390/atmos15070754

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