Application of Telepathology for Rapid On-Site Evaluation of Touch Imprint Cytology in CT-Guided Percutaneous Transthoracic Core Needle Biopsy of Pulmonary Nodules: The Experience of Our Multidisciplinary Thoracic Tumor Board
Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Selection of Cases
2.2. Overview of the Biopsy Procedure
2.3. Scanning System
2.4. ROSE and TCROSE Procedure
2.5. Statistical Analysis
3. Results
3.1. Clinico-Radiological Features
3.2. Pathological Features
3.3. Statistical Analysis
4. Discussion
- Imaging devices at the site, including a camera, supporting hardware, and software, to create digital representations of samples.
- A dedicated software platform that enables remote transmission of the captured images;
- A network communication system, such as an internet connection or Wi-Fi, to facilitate data transfer;
- A remote viewing station, consisting of a monitor, necessary hardware, and software, for analyzing the received images
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
CT | Computed Tomography |
EU | European Union |
EUS-FNAB | EUS-Fine-Needle Aspiration Biopsy |
FN | False Negative |
FP | False Positive |
GDPR | General Data Protection Regulation |
IT | Information Technology |
LC | Lung Cancer |
LUSC | Lung Squamous Cell Carcinoma |
MCS | Medical Course Students |
NET | NeuroEndocrine Tumor |
NM-LUAD | Non-Mucinous Lung Adenocarcinoma |
NOS | Non Otherwise Specified |
NPV | Negative Predictive Value |
NSCLC | Non Small Cell Lung Cancer |
PGMS | Post-Graduate Medical Schools |
PN | Pulmonary Nodules |
PPV | Positive Predictive Value |
ROSE | Rapid On-Site Evaluation |
SFT | Solitary Fibrous Tumor |
STS | Small Tissue Specimen |
TBB | Trans Bronchial Biopsy |
TC-TOSE | Tele-Cytology Rapid On-Site Evaluation |
TIC | Touch Imprint Cytology |
TIS | Touch Imprint Slide |
TN | True Negative |
TP | True Positive |
TBB | TransBronchial Biopsy |
EBUS-TBNA | UltraSound-guided TransBronchial Needle Aspiration |
References
- Lucà, S.; Zannini, G.; Morgillo, F.; Della Corte, C.M.; Fiorelli, A.; Marino, F.Z.; Campione, S.; Vicidomini, G.; Guggino, G.; Ronchi, A.; et al. The prognostic value of histopathology in invasive lung adenocarcinoma: A comparative review of the main proposed grading systems. Expert Rev. Anticancer Ther. 2023, 23, 265–277. [Google Scholar] [CrossRef] [PubMed]
- Sigel, C.S.; Moreira, A.L.; Travis, W.D.; Zakowski, M.F.; Thornton, R.H.; Riely, G.J.; Rekhtman, N. Subtyping of non-small cell lung carcinoma: A comparison of small biopsy and cytology specimens. J. Thorac. Oncol. 2011, 6, 1849–1856. [Google Scholar] [CrossRef] [PubMed]
- Portela de Oliveira, E.; Souza, C.A.; Inacio, J.R.; Abdelzarek, M.; Dennie, C.; Gupta, A.; Bayanati, H. Imaging-guided percutaneous biopsy of nodules ≤1 cm: Study of diagnostic performance and risk factors associated with biopsy failure. J. Thorac. Imaging 2020, 35, 123–128. [Google Scholar] [CrossRef]
- Constantinescu, A.; Stoicescu, E.R.; Iacob, R.; Chira, C.A.; Cocolea, D.M.; Nicola, A.C.; Mladin, R.; Oancea, C.; Manolescu, D. CT-guided transthoracic core-needle biopsy of pulmonary nodules: Current practices, efficacy, and safety considerations. J. Clin. Med. 2024, 13, 7330. [Google Scholar] [CrossRef]
- Witt, B.L. Rapid on-site evaluation (ROSE): A pathologists’ perspective. Tech. Vasc. Interv. Radiol. 2021, 24, 100767. [Google Scholar] [CrossRef]
- Zuccatosta, L.; Rossi, G.; Gasparini, S.; Ferretti, M.; Mei, F.; Sediari, M.; Barbisan, F.; Goteri, G.; Corbo, G.M.; Berardino, A.D.M. Validation of a cytological classification system for the rapid on-site evaluation (ROSE) of pulmonary and mediastinal needle aspirates. Diagnostics 2022, 12, 2777. [Google Scholar] [CrossRef]
- Kops, S.E.P.; van der Burgt, L.J.W.; Vos, S.; van Zuijlen-Manders, L.J.M.; Verhoeven, R.L.J.; van der Heijden, E.H.F.M. Rapid on-site evaluation of touch imprint cytology in navigation bronchoscopy for small peripheral pulmonary nodules. Cancer Cytopathol. 2024, 132, 233–241. [Google Scholar] [CrossRef]
- Muto, Y.; Uchimura, K.; Imabayashi, T.; Matsumoto, Y.; Furuse, H.; Tsuchida, T. Clinical utility of rapid on-site evaluation of touch imprint cytology during cryobiopsy for peripheral pulmonary lesions. Cancers 2022, 14, 4493. [Google Scholar] [CrossRef]
- Botticella, M.A.; De Summa, S.; Cisternino, L.; Tommasi, S.; Pastena, M.I.; Schirosi, L.; Mangia, A.; Mele, F.; Lozupone, A.; Scattone, A.; et al. The role of rapid on-site evaluation on touch imprint cytology and brushing during conventional bronchoscopy. Diagn. Cytopathol. 2021, 49, 832–837. [Google Scholar] [CrossRef]
- da Cunha Santos, G.; Ko, H.M.; Saieg, M.A.; Geddie, W.R. “The petals and thorns” of ROSE (rapid on-site evaluation). Cancer Cytopathol. 2013, 121, 4–8. [Google Scholar] [CrossRef]
- D’Abbronzo, G.; Lucà, S.; Carraturo, E.; Franco, R.; Ronchi, A. Shortage of pathologists in Italy: Survey for students and residents. Pathologica 2023, 115, 172–180. [Google Scholar] [CrossRef] [PubMed]
- Märkl, B.; Füzesi, L.; Huss, R. Number of pathologists in Germany: Comparison with European countries, USA, and Canada. Virchows Arch. 2021, 478, 335–341. [Google Scholar] [CrossRef]
- Larson, D.B.; Langlotz, C.P. The role of radiology in the diagnostic process: Information, communication, and teamwork. AJR Am. J. Roentgenol. 2017, 209, 992–1000. [Google Scholar] [CrossRef]
- Yan, S.; Li, Y.; Pan, L.; Jiang, H.; Gong, L.; Jin, F. The application of artificial intelligence for Rapid On-Site Evaluation during flexible bronchoscopy. Front. Oncol. 2024, 14, 1360831. [Google Scholar] [CrossRef]
- Lin, R.; Sheng, L.P.; Han, C.Q.; Guo, X.; Wei, R.; Ling, X.; Ding, Z. Application of artificial intelligence to digital-rapid on-site cytopathology evaluation during endoscopic ultrasound-guided fine needle aspiration: A proof-of-concept study. J. Gastroenterol. Hepatol. 2023, 38, 883–887. [Google Scholar] [CrossRef]
- Zhang, S.; Zhou, Y.; Tang, D.; Ni, M.; Zheng, J.; Xu, G.; Peng, C.; Shen, S.; Zhan, Q.; Wang, X.; et al. A deep learning-based segmentation system for rapid onsite cytologic pathology evaluation of pancreatic masses: A retrospective, multicenter, diagnostic study. eBioMedicine 2022, 80, 104022. [Google Scholar] [CrossRef]
- Fujii, Y.; Uchida, D.; Sato, R.; Obata, T.; Akihiro, M.; Miyamoto, K.; Morimoto, K.; Terasawa, H.; Yamazaki, T.; Matsumoto, K.; et al. Effectiveness of data-augmentation on deep learning in evaluating rapid on-site cytopathology at endoscopic ultrasound-guided fine needle aspiration. Sci. Rep. 2024, 14, 22441. [Google Scholar] [CrossRef]
- Naso, J.R.; Chan, J.; Reisenauer, J.; Edell, E.S.; Stackhouse, K.; Bungum, A.O.; Vierkant, R.A.; Pierson, K.; Seidl, A.; Sturgis, C.D.; et al. Remotely operated robotic microscopy for rapid diagnosis of bronchoscopic cytology specimens. Diagn. Cytopathol. 2023, 51, 554–562. [Google Scholar] [CrossRef]
- Albano, D.; Fusco, S.; Zappia, M.; Sconfienza, L.M.; Giovagnoni, A.; Aliprandi, A.; Messina, C. Musculoskeletal Radiology Education: A National Survey by the Italian College of Musculoskeletal Radiology. Diagnostics 2023, 14, 40. [Google Scholar] [CrossRef]
- Bortesi, M.; Marchetti, M.; Arpaia, I.; Marchi, L.; Ganassi, M.; Zanetti, E.; Fontanesi, C.; Costantini, M.; Piana, S. Pathologists’ assistants, an essential healthcare workforce: The experience of a surgical pathology department in Italy. J. Clin. Pathol. 2022, 75, 472–476. [Google Scholar] [CrossRef]
- Bai, S.; Millis, M.; Wilson, S.; Scott, M.; Goulart, R.A.; Maxfield, M.W.; Lou, F.; Sood, R.N.; Fischer, A.H. Liquid-based rapid onsite evaluation of endobronchial ultrasound cytologies. J. Am. Soc. Cytopathol. 2022, 11, 375–384. [Google Scholar] [CrossRef] [PubMed]
- Huo, Y.R.; Chan, M.V.; Habib, A.R.; Lui, I.; Ridley, L. Pneumothorax rates in CT-Guided lung biopsies: A comprehensive systematic review and meta-analysis of risk factors. Br. J. Radiol. 2020, 93, 20190866. [Google Scholar] [CrossRef]
- Balasubramanian, P.; Abia-Trujillo, D.; Barrios-Ruiz, A.; Garza-Salas, A.; Koratala, A.; Chandra, N.C.; Lee-Mateus, A.Y.; Labarca, G.; Fernandez-Bussy, S. Diagnostic yield and safety of diagnostic techniques for pulmonary lesions: Systematic review, meta-analysis and network meta-analysis. Eur. Respir. Rev. 2024, 33, 240046. [Google Scholar] [CrossRef]
- Vachani, A.; Zhou, M.; Ghosh, S.; Zhang, S.; Szapary, P.; Gaurav, D.; Kalsekar, I. Complications After Transthoracic Needle Biopsy of Pulmonary Nodules: A Population-Level Retrospective Cohort Analysis. J. Am. Coll. Radiol. 2022, 19, 1121–1129. [Google Scholar] [CrossRef]
- Tai, R.; Dunne, R.M.; Trotman-Dickenson, B.; Jacobson, F.L.; Madan, R.; Kumamaru, K.K.; Hunsaker, A.R. Frequency and Severity of Pulmonary Hemorrhage in Patients Undergoing Percutaneous CT-guided Transthoracic Lung Biopsy: Single-Institution Experience of 1175 Cases. Radiology 2016, 279, 287–296. [Google Scholar] [CrossRef]
- Song, Y.S.; Park, C.M.; Park, K.W.; Kim, K.G.; Lee, H.-J.; Shim, M.-S.; Goo, J.M. Does antiplatelet therapy increase the risk of hemoptysis during percutaneous transthoracic needle biopsy of a pulmonary lesion? AJR Am. J. Roentgenol. 2013, 200, 1014–1019. [Google Scholar] [CrossRef]
- Pietersen, P.I.; Kristjansdottir, B.; Laursen, C.M.; Jørgensen, G.M.; Graumann, O. Systemic air embolism following computed-tomography-guided transthoracic needle biopsy of lung lesion—A systematic search of case reports and case series. Acta Radiol. Open 2022, 11, 20584601221096680. [Google Scholar] [CrossRef]
- Weinstein, R.S.; Bloom, K.J.; Rozek, L.S. Telepathology. Long-distance diagnosis. Am. J. Clin. Pathol. 1989, 91, S39–S42. [Google Scholar]
- Farahani, N.; Pantanowitz, L. Overview of telepathology. Surg. Pathol. Clin. 2015, 8, 223–231. [Google Scholar] [CrossRef]
- Perez, D.; Stemmer, M.N.; Khurana, K.K. Utilization of dynamic telecytopathology for rapid on-site evaluation of touch imprint cytology of needle core biopsy: Diagnostic accuracy and pitfalls. Telemed. J. E Health 2021, 27, 525–531. [Google Scholar] [CrossRef]
- Petersen, J.M.; Jhala, D. Telepathology: A transforming practice for the efficient, safe, and best patient care at the Regional Veteran Affairs Medical Center. Am. J. Clin. Pathol. 2022, 158, S97–S98. [Google Scholar] [CrossRef]
- Lin, O.; Alperstein, S.; Barkan, G.A.; Cuda, J.M.; Kezlarian, B.; Jhala, D.; Jin, X.; Mehrotra, S.; Monaco, S.E.; Rao, J.; et al. American Society of Cytopathology Telecytology validation recommendations for rapid on-site evaluation (ROSE). J. Am. Soc. Cytopathol. 2024, 13, 111–121. [Google Scholar] [CrossRef]
- Alexander, E.S.; Ziv, E. Percutaneous lung biopsy: Counterpoint-core biopsy to allow for molecular and histologic subtyping. AJR Am. J. Roentgenol. 2022, 218, 796. [Google Scholar] [CrossRef]
- Zhang, H.; Tian, S.; Wang, S.; Liu, S.; Liao, M. CT-guided percutaneous core needle biopsy in typing and subtyping lung cancer: A comparison to surgery. Technol. Cancer Res. Treat. 2022, 21, 15330338221086411. [Google Scholar] [CrossRef]
- Wang, J.; Zhang, T.; Xu, Y.; Yang, M.; Huang, Z.; Lin, J.; Xie, S.; Sun, H. Comparison between percutaneous transthoracic co-axial needle CT-guided biopsy and transbronchial lung biopsy for the diagnosis of persistent pulmonary consolidation. Insights Imaging 2023, 14, 80. [Google Scholar] [CrossRef]
- Balbi, M.; Righi, L.; Culasso, N.C.; Bignoli, M.; Senkeev, R.; Garello, L.F.; Carota, D.; Sobrero, S.; Novello, S.; Veltri, A. CT-guided transthoracic needle biopsy: How we do it. Eur. J. Radiol. 2025, 184, 111994. [Google Scholar] [CrossRef]
- Qi, J.C.; Liao, L.; Zhao, Z.; Zeng, H.; Wang, T.; Hu, M.; Wang, L.; Wu, Z.; Ye, Y.; Ou, Y.; et al. Impact of rapid on-site evaluation combined with endobronchial ultrasound and virtual bronchoscopic navigation in diagnosing peripheral lung lesions. BMC Pulm. Med. 2022, 22, 117. [Google Scholar] [CrossRef]
- Echeveste, J.I.; Labiano, T.; Tejerina, E.; Argueta, A.; de Andrea, C.; Lozano, M.D. Challenges of ICC and FISH in the field of targeted therapies from cell block to smears. J. Mol. Pathol. 2021, 2, 55–65. [Google Scholar] [CrossRef]
- Petersen, J.M.; Jhala, N.; Jhala, D.N. The critical value of telepathology in the COVID-19 era. Fed. Pract. 2023, 40, 186–193. [Google Scholar] [CrossRef]
- Archondakis, S.; Roma, M.; Kaladelfou, E. The use of static telecytology for quality assessment purposes in the evaluation of cervical smears prepared by means of liquid-based cytology. Telemed. J. E Health 2020, 26, 1522–1525. [Google Scholar] [CrossRef]
- Sirintrapun, S.J.; Rudomina, D.; Mazzella, A.; Feratovic, R.; Lin, O. Successful secure high-definition streaming telecytology for remote cytologic evaluation. J. Pathol. Inform. 2017, 8, 33. [Google Scholar] [CrossRef] [PubMed]
- Weinstein, R.S.; Graham, A.R.; Richter, L.C.; Barker, G.P.; Krupinski, E.A.; Lopez, A.M.; Erps, K.A.; Bhattacharyya, A.K.; Yagi, Y.; Gilbertson, J.R. Overview of telepathology, virtual microscopy, and whole slide imaging: Prospects for the future. Hum. Pathol. 2009, 40, 1057–1069. [Google Scholar] [CrossRef] [PubMed]
- Lin, O.; Rudomina, D.; Feratovic, R.; Sirintrapun, S.J. Rapid on-site evaluation using telecytology: A major cancer center experience. Diagn. Cytopathol. 2019, 47, 15–19. [Google Scholar] [CrossRef]
- Garcia, E.; Kundu, I.; Fong, K. The American Society for Clinical Pathology’s 2021 Wage Survey of Medical Laboratories in the United States. Am. J. Clin. Pathol. 2022, 158, 702–722. [Google Scholar] [CrossRef]
- Dahlberg, G.J.; Godfrey, C.M.; Deppen, S.A.; Richardson, J.; Heideman, B.E.; Ratwani, A.P.; Paez, R.; Leonard, K.M.; Shojaee, S.; Lentz, R.J. Cost-Effectiveness of Rapid On-Site Evaluation During Navigational Bronchoscopy. CHEST Pulm. 2024, 2, 100066. [Google Scholar] [CrossRef]
Category | Adequacy |
---|---|
True Positive | TC-ROSE evaluation matched the final report on bioptic sample |
True Negative | TC-ROSE evaluation of inadequacy matched the final report on bioptic sample |
False Positive | TC-ROSE opinion was deemed adequate, but the final report on bioptic sample was inadequate or insufficient for diagnosis |
False Negative | TC-ROSE opinion was inadequate, but the final report on bioptic sample was adequate and diagnostic |
Clinico-Radiological Features | N° Cases (%) |
---|---|
Sex | |
Male | 32/50 (64%) |
Female | 18/50 (36%) |
Years | |
≤60 | 9/50 (18%) |
>60 | 41/50 (82%) |
Mean | 69 |
Median | 72 |
CT Diameter (mm) | |
Median | 40 |
Mean | 42.2 |
Side | |
Right Lung | 28/50 (56%) |
Left Lung | 22/50 (44%) |
Site of the Lesion | |
Right upper lobe (RUL) | 15/28 (53.5%) |
Right lower lobe (RLL) | 12/28 (42.8%) |
Right middle lobe (RML) | 1/28 (3.7%) |
Left upper lobe (LUL) | 9/50 (41%) |
Left lower lobe (LLL) | 12/22 (54.5%) |
Lingula | 1/22 (4.5%) |
Comorbidities | |
COPD | 15/50 (30%) |
Previous Neoplasms (other district) | 6/50 (12%) |
Previous Neoplasms (thoracic district) | 0/50 |
Sleep Apnea | 4/50 (8%) |
Dyslipidemia | 18/50 (36%) |
Osteoporosis | 5/50 (10%) |
Anemia | 6/50 (12%) |
Arterial Hypertension | 22/50 (44%) |
GERD | 8/50 (16%) |
Cardiopathy | 4/50 (8%) |
Smoking habits | |
Smoker | 18/50 (36%) |
Non-smoker | 10/50 (20%) |
Ex-smoker | 11/50 (22%) |
N/A | 11/50 (22%) |
Complications | |
Pneumothorax | 7/50 (14%) |
Pulmonary Hemorrhage (mild perilesional hemorrhagic suffusion) | 15/50 (30%) |
Hemoptysis | 0/50 (0) |
Hemothorax | 0/50 (0) |
Air Embolism | 0/50 (0) |
Pathological Features | N° of Cases (%) |
---|---|
ROSE | |
Adequate for diagnosis | 43/50 (86%) |
Not adequate for diagnosis | 0/50 (0) |
Adequate for diagnosis but not representative of the clinical suspect | 7/50 (14%) |
Surface of TIS (mm) | |
Mean surface | 11 × 9.75 mm |
Scanning time (s) | |
Mean time | 140 s |
Diagnosis | |
Neoplastic | 45/50 (90%) |
Not neoplastic | 5/50 (10%) |
Histopathological Diagnosis | |
NSCLC, Adenocarcinoma | 23/50 (46%) |
NSCLC, Adenocarcinoma with mucinous features | 5/50 (10%) |
NSCLC, SCC | 9/50 (18%) |
NSCLC-NOS | 2/50 (4%) |
NET-NOS | 1/50 (2%) |
SFT | 1/50 (2%) |
Metastasis | 4/50 (8%) |
Pneumocyte hyperplasia, probably reactive, with inflammatory background and respiratory bronchiolitis features | 3/50 (6%) |
Pulmonary inflammatory disease with organizing pneumonia features | 1/50 (2%) |
Pulmonary inflammatory disease with necrotizing granulomatous pneumonia features | 1/50 (2%) |
Evaluation | ||
---|---|---|
Adequate (%) | Adequate But Not Representative (%) | |
On-Site | 27 (90%) | 3 (10%) |
Telepathology | 27 (90%) | 3 (10%) |
ROSE | Histopathological Diagnosis on CNB | ||||||
---|---|---|---|---|---|---|---|
LUAD (%) | LUSC (%) | NSCLC-NOS (%) | NET-NOS (%) | SFT (%) | Lung Metastases (%) | Inflammatory Process (%) | |
Adequate | 27 (62.8%) | 9 (21%) | 1 (2.3%) | 1 (2.3%) | 1 (2.3%) | 4 (9.3%) | 0 |
Adequate but not Representative | 1 (14.3%) | 0 | 1 (14.3%) | 0 | 0 | 0 | 5 (71.4%) |
Not Adequate | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
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Lucà, S.; Monti, R.; Della Corte, C.M.; Cantisani, A.; Cozzolino, I.; Clery, E.; Amato, M.; Marone, L.; Capasso, F.; Di Guida, G.; et al. Application of Telepathology for Rapid On-Site Evaluation of Touch Imprint Cytology in CT-Guided Percutaneous Transthoracic Core Needle Biopsy of Pulmonary Nodules: The Experience of Our Multidisciplinary Thoracic Tumor Board. Cancers 2025, 17, 1738. https://doi.org/10.3390/cancers17111738
Lucà S, Monti R, Della Corte CM, Cantisani A, Cozzolino I, Clery E, Amato M, Marone L, Capasso F, Di Guida G, et al. Application of Telepathology for Rapid On-Site Evaluation of Touch Imprint Cytology in CT-Guided Percutaneous Transthoracic Core Needle Biopsy of Pulmonary Nodules: The Experience of Our Multidisciplinary Thoracic Tumor Board. Cancers. 2025; 17(11):1738. https://doi.org/10.3390/cancers17111738
Chicago/Turabian StyleLucà, Stefano, Riccardo Monti, Carminia Maria Della Corte, Antonia Cantisani, Immacolata Cozzolino, Eduardo Clery, Martina Amato, Laura Marone, Francesca Capasso, Gaetano Di Guida, and et al. 2025. "Application of Telepathology for Rapid On-Site Evaluation of Touch Imprint Cytology in CT-Guided Percutaneous Transthoracic Core Needle Biopsy of Pulmonary Nodules: The Experience of Our Multidisciplinary Thoracic Tumor Board" Cancers 17, no. 11: 1738. https://doi.org/10.3390/cancers17111738
APA StyleLucà, S., Monti, R., Della Corte, C. M., Cantisani, A., Cozzolino, I., Clery, E., Amato, M., Marone, L., Capasso, F., Di Guida, G., Leonardi, B., Morgillo, F., Fiorelli, A., Franco, R., Montella, M., & Vicidomini, G. (2025). Application of Telepathology for Rapid On-Site Evaluation of Touch Imprint Cytology in CT-Guided Percutaneous Transthoracic Core Needle Biopsy of Pulmonary Nodules: The Experience of Our Multidisciplinary Thoracic Tumor Board. Cancers, 17(11), 1738. https://doi.org/10.3390/cancers17111738