Radiology
HOME HELP FEEDBACK SUBSCRIPTIONS ARCHIVE SEARCH TABLE OF CONTENTS
 QUICK SEARCH:   [advanced]


     


Published online before print June 12, 2003, 10.1148/radiol.2283030726
This Article
Right arrow Abstract Freely available
Right arrow Figures Only
Right arrow Full Text (PDF)
Right arrow All Versions of this Article:
2283030726v1
228/3/810    most recent
Right arrow Submit a response
Right arrow Alert me when this article is cited
Right arrow Alert me when eLetters are posted
Right arrow Alert me if a correction is posted
Right arrow Citation Map
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Antonio, G. E.
Right arrow Articles by Ahuja, A. T.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Antonio, G. E.
Right arrow Articles by Ahuja, A. T.
(Radiology 2003;228:810-815.)
© RSNA, 2003


Thoracic Imaging

Thin-Section CT in Patients with Severe Acute Respiratory Syndrome Following Hospital Discharge: Preliminary Experience1

Gregory E. Antonio, MD, K. T. Wong, MD, David S. C. Hui, MD, Alan Wu, MD, Nelson Lee, MD, Edmund H. Y. Yuen, MD, C. B. Leung, MD, T. H. Rainer, MD, Peter Cameron, MD, Sydney S. C. Chung, MD, Joseph J. Y. Sung, MD and Anil T. Ahuja, MD

1 From the Departments of Diagnostic Radiology and Organ Imaging (G.E.A., K.T.W., E.H.Y.Y., A.T.A.), Medicine and Therapeutics (D.S.C.H., A.W., N.L., C.B.L., J.J.Y.S.), Accident and Emergency Medicine (T.H.R., P.C.), and Surgery (S.S.C.C.), Prince of Wales Hospital, Chinese University of Hong Kong, 30-32 Ngan Shing St, Shatin, Hong Kong SAR. Received May 7, 2003; revision requested May 14; revision received May 20; accepted May 21. Address correspondence to K.T.W. (e-mail: wongkatakjeffrey@hotmail.com).


    ABSTRACT
 TOP
 ABSTRACT
 INTRODUCTION
 MATERIALS AND METHODS
 RESULTS
 DISCUSSION
 REFERENCES
 
PURPOSE: To report the initial experience regarding thin-section computed tomographic (CT) findings in patients with severe acute respiratory syndrome (SARS) who improved clinically after treatment.

MATERIALS AND METHODS: Twenty-four patients (10 men, 14 women; mean age, 39 years; age range, 23–70 years) with confirmed SARS underwent follow-up thin-section CT of the thorax. The scans were obtained on average 36.5 days after hospital admission and were analyzed for parenchymal abnormality (ground-glass opacification, consolidation, or interstitial thickening) and evidence of fibrosis (parenchymal band, traction bronchiectasis, irregular interfaces). Patients were assigned to group 1 (with CT evidence of fibrosis) and group 2 (without CT evidence of fibrosis) for analysis. Patient demographics, length of hospital stay, rate of intensive care unit admission, peak lactate dehydrogenase level, pulsed intravenous methylprednisolone therapy, and peak opacification on chest radiographs were compared between the two groups.

RESULTS: Parenchymal abnormality was found in 96% (23 of 24) of patients and ranged from residual ground-glass opacification and interstitial thickening in group 2 (nine of 24, 38%) to fibrosis in group 1 (15 of 24, 62%). Patients in group 1 were older (mean age, 45 vs 30.3 years), had a higher rate of intensive care unit admission (27% [four of 15] vs 11% [one of nine]), more requirement for pulsed intravenous methylprednisolone (87%, [13 of 15] vs 67% [six of nine]), higher peak lactate dehydrogenase level (438.9 vs 355.6 U/L), and higher peak opacification on chest radiographs (estimated area, 14% vs 11%) than patients in group 2.

CONCLUSION: Pulmonary fibrosis may develop early in patients with SARS who have been discharged after treatment. Patients who are older and have more severe disease during treatment are more likely to develop thin-section CT findings of fibrosis.

© RSNA, 2003

Index terms: Lung, CT, 69.12118 • Pneumonia, acute interstitial, 69.21 • Severe acute respiratory syndrome


    INTRODUCTION
 TOP
 ABSTRACT
 INTRODUCTION
 MATERIALS AND METHODS
 RESULTS
 DISCUSSION
 REFERENCES
 
Severe acute respiratory syndrome (SARS) is thought to be caused by a mutated coronavirus (1). Imaging plays an important role in the diagnosis and treatment of patients with SARS. Chest radiography is one of the major diagnostic components according to the World Health Organization and Centers for Disease Control and Prevention guidelines (2,3). Chest radiography helps in the diagnosis by depicting lung opacities and also helps in the evaluation of the progress of disease and response to treatment (4). The role of thin-section computed tomography (CT) is particularly important in early diagnosis in patients with a high clinical suspicion of disease and a negative chest radiograph (5).

In view of the role of imaging in the diagnosis and management of SARS, we were interested in determining its role, if any, in the evaluation of patients after they have responded to treatment and have been discharged from the hospital. We were particularly interested in determining if thin-section CT demonstrates any residual parenchymal abnormalities or scarring in the early postdischarge period, as this may have implications for future treatment. Thus, the purpose of this study was to report our initial experience regarding the thin-section CT findings in patients with SARS who improved clinically after treatment.


    MATERIALS AND METHODS
 TOP
 ABSTRACT
 INTRODUCTION
 MATERIALS AND METHODS
 RESULTS
 DISCUSSION
 REFERENCES
 
This study and the use of patient case files were approved by the review board of our institution. Informed consent was waived by the review board.

Patients and CT Imaging
Our study extended from April 7, 2003, to May 6, 2003, and included 24 patients who had been discharged from the hospital after treatment for SARS as inpatients at our institution. Their diagnosis was based on World Health Organization criteria (2). All patients also met specified discharge criteria that included (a) being afebrile for at least 96 hours after the last dose of steroid, (b) resolving respiratory symptoms and oxygen independence, (c) radiologic improvement (based on serial chest radiographs) (4), and (d) improving laboratory parameters. If the patients met the discharge criteria and the date of hospital discharge was less than 21 days since the day of the onset of fever, they were discharged from the SARS hospital ward to a step-down convalescent facility. If the date of the hospital discharge was beyond 21 days since the day of the onset of fever, the patients were discharged home. Infection control protection maneuvers to be followed at home were explained to them. The 24 patients included 10 men and 14 women (age range, 23–70 years; mean age, 39 years).

Although these patients met the discharge criteria and were otherwise well enough to perform their daily activities, they complained of exertional dyspnea and/or reduced exercise tolerance at clinical follow-up. Because this was a new entity with no previous literature about disease progression for guidance, we performed follow-up thin-section CT (in addition to conventional chest radiography) in the patients to document any residual lung abnormalities. An additional 19 patients met our criteria but were not included in our study since thin-section CT, which had been scheduled, had not yet been performed.

Thin-section CT (HiSpeed Advantage; GE Medical Systems, Milwaukee, Wis) was performed (1-mm section thickness with 6-mm gap, supine position, scanning during inspiration, 1 second per scan, 120 kV, 140 mA). The scans were obtained on average 36.5 days (range, 16–56 days) after the initial hospital admission and 17.8 days after discharge (range, 1–33 days).

Review of CT Images
All CT images were reviewed by three radiologists (A.T.A., K.T.W., G.E.A.) using a viewing console, and findings were established by consensus. Each segment of the lung was reviewed for ground-glass opacification, airspace consolidation, interstitial thickening, bronchiectasis, and architectural distortion. Ground-glass opacification was defined as increased lung parenchymal attenuation that did not obscure the underlying vascular architecture (6). Consolidation was defined as opacification in which the underlying vasculature was obscured (6). Abnormalities were magnified by using a zoom function and were examined for intralobular interstitial, interlobular septal, or peribronchovascular interstitial thickening. Attention was also paid to the presence of nodules or masses, cavitation or calcification, and emphysema. The presence of parenchymal bands, irregular interfaces (bronchovascular, pleural, or mediastinal), and traction bronchiectasis were considered as evidence of fibrosis (79). Thickened interstitium could not be used as evidence of fibrosis since it may also be present during the acute illness (5).

For patients who underwent an initial examination (conventional or thin-section CT) for diagnosis, the abnormalities were compared with those seen on the follow-up thin-section CT scans.

Chest Radiography and Evaluation
Frontal chest radiographs were obtained during the hospital stay, at discharge, and at follow-up. All radiographic examinations were performed with CT equipment by using standardized techniques, as previously reported (4). The images were assessed by using a picture archiving and communication system viewer with a 2,048 x 2,048-pixel monitor (Magicview version VA22E; Siemens, Erlangen, Germany).

The chest radiographs were retrospectively reviewed by three radiologists (A.T.A., K.T.W., G.E.A.) in consensus by using a method identical to that used in a previous study (4).

Clinical Comparison and Data Analysis
Patients with evidence of pulmonary fibrosis at thin-section CT were designated as group 1, and patients without evidence of fibrosis at thin-section CT were designated as group 2.

Patient age, sex, average hospital stay, rate of intensive care unit admission, peak lactate dehydrogenase level, and the presence and number of doses of pulsed intravenous methylprednisolone were compared between the two groups. The peak opacification on chest radiographs during the hospital stay and the number of abnormal lung segments (showing any form of opacification or evidence of fibrosis) for each patient on follow-up thin-section CT scans were also compared between the two groups.


    RESULTS
 TOP
 ABSTRACT
 INTRODUCTION
 MATERIALS AND METHODS
 RESULTS
 DISCUSSION
 REFERENCES
 
Fifteen patients (eight men, seven women; mean age, 45 years; age range, 23–70 years) were designated as group 1 (62%); nine patients (two men, seven women; mean age, 30.3 years; age range, 23–50 years), as group 2 (38%).

Chest Radiography at Discharge and Follow-up
At discharge, 20 of the 24 patients still had residual abnormalities on the chest radiographs. These abnormalities included patchy areas of opacification (20 of 24 patients) and signs of volume loss (five of 24 patients). At follow-up (in the review clinic, average of 18 days after discharge), 15 of 24 patients had an abnormal chest radiograph, and nine patients had a normal chest radiograph. Of the 15 patients, 10 showed improvement in the air-space opacification between discharge and follow-up, whereas abnormalities (airspace opacification or volume loss) on the chest radiographs remained static in the other five patients.

Thin-Section CT Abnormalities
The thin-section CT scan was abnormal in 23 (96%) of 24 patients. In all 23 patients, the images showed areas of ground-glass opacification of various sizes, along with thickening of interlobular septa and intralobular interstitium. The mean number of segments showing these abnormalities was 8.7 (range, 1–17). The thin-section CT scan was normal in one patient. There were no masses or nodules, emphysema, cavitation, or calcification.

In nine patients (eight underwent thin-section CT; one, conventional CT) who underwent CT at initial presentation, there was improvement in all patients, with residual ground-glass opacification and thickened interlobular septa in eight of the nine patients (Fig 1). The mean interval between the two CT scans was 23.3 days (range, 14–41 days). In one of the nine patients, there was complete resolution of the lung abnormalities.



View larger version (132K):
[in this window]
[in a new window]
[Download PPT slide]
 
Figure 1a. (a) Transverse thin-section CT scan of right lower lobe in a 25-year-old woman with SARS (obtained at day 3 after admission) shows two areas of ground-glass opacification, with thickened interlobular septa giving crazy-paving appearance. (b) Follow-up CT scan after discharge (obtained at day 27 after admission) shows almost complete resolution of lung abnormalities. Small patches of residual ground-glass opacification and septal thickening are still present.

 


View larger version (116K):
[in this window]
[in a new window]
[Download PPT slide]
 
Figure 1b. (a) Transverse thin-section CT scan of right lower lobe in a 25-year-old woman with SARS (obtained at day 3 after admission) shows two areas of ground-glass opacification, with thickened interlobular septa giving crazy-paving appearance. (b) Follow-up CT scan after discharge (obtained at day 27 after admission) shows almost complete resolution of lung abnormalities. Small patches of residual ground-glass opacification and septal thickening are still present.

 
There were signs of fibrosis (parenchymal band, irregular interfaces, and traction bronchiectasis) and peribronchovascular interstitial thickening (Figs 2, 3) in 15 (62%) of 24 patients. These were associated with architectural distortion that resulted in movement of the fissures and bronchovascular bundles. The ground-glass opacification in these 15 patients surrounded the areas of fibrosis. There were also small patches of consolidation in the center of the fibrotic areas, adjacent to the bronchi.



View larger version (118K):
[in this window]
[in a new window]
[Download PPT slide]
 
Figure 2a. (a) Transverse conventional CT scan in 33-year-old man with SARS (obtained at day 4 after admission) shows ground-glass opacification. (b) Follow-up thin-section CT scan (obtained at day 46 after admission, 29 days since discharge) of the corresponding area shows evidence of fibrosis, such as parenchymal bands, irregular interface, and traction bronchiectasis.

 


View larger version (123K):
[in this window]
[in a new window]
[Download PPT slide]
 
Figure 2b. (a) Transverse conventional CT scan in 33-year-old man with SARS (obtained at day 4 after admission) shows ground-glass opacification. (b) Follow-up thin-section CT scan (obtained at day 46 after admission, 29 days since discharge) of the corresponding area shows evidence of fibrosis, such as parenchymal bands, irregular interface, and traction bronchiectasis.

 


View larger version (111K):
[in this window]
[in a new window]
[Download PPT slide]
 
Figure 3. Transverse thin-section CT scan in 36-year-old man at follow-up (obtained at day 43 after admission, 26 days since discharge) shows evidence of fibrosis. Large areas of ground-glass opacification are still present, both surrounding the areas of fibrosis and in other regions.

 
Comparison between Groups
Patients in group 1 were older than those in group 2 (mean age, 45 vs 30.3 years). The majority of male patients (eight of 10) were in group 1 (Table).


View this table:
[in this window]
[in a new window]

 
Comparison between SARS Patients with and Those without Evidence of Fibrosis

 
Group 1 patients stayed in the hospital for a slightly longer period of time than did patients in group 2 (22.3 vs 16.4 days). The intensive care unit admission rate was higher in group 1 patients (27% [four of 15] vs 11% [one of nine]) than in group 2 patients. The peak lactate dehydrogenase level was also higher in group 1 (438.9 vs 355.6 U/L) than in group 2 patients. The normal range of lactate dehydrogenase level at our institution is 87–213 U/L.

During their hospital stay, more patients in group 1 had received pulsed intravenous methylprednisolone (in addition to oral ribavirin and oral corticosteroid) than did patients in group 2 (87% [13 of 15] vs 67% [six of nine]). Group 1 patients also received a higher number of doses of pulsed intravenous methylprednisolone (average dose, 3.9; range, 1–8) than did group 2 patients (average dose, 3.0; range, 2–4).

The peak opacification on chest radiographs was slightly worse in group 1 patients, showing an average of 14% (range, 1.7%–33%) of the total area of opacification compared with that in group 2 patients (11%; range, 1.7%–28%). More lung segments were abnormal on the follow-up thin-section CT scans in group 1 patients (mean, 10.8; range, three to 17) than in group 2 patients (4.7; range, zero to 11).


    DISCUSSION
 TOP
 ABSTRACT
 INTRODUCTION
 MATERIALS AND METHODS
 RESULTS
 DISCUSSION
 REFERENCES
 
To date, 317 patients have been treated at our hospital for SARS (SARS diagnosis based on World Health Organization criteria). Of these, 55 patients are still in the hospital, 35 have died, and 227 have been discharged. Patient follow-up has only just begun, and 94 patients have been seen at the follow-up clinic. Of these, 43 patients have exertional dyspnea or reduced exercise tolerance. Our study population of 24 of these 43 patients represented those patients in whom thin-section CT had already been performed. The other 19 patients had been scheduled to undergo thin-section CT, but it had not yet been performed.

In our study, follow-up thin-section CT scans obtained in discharged patients have shown that fibrosis occurred in more than half (62%) of the patients. Findings of this study have also revealed how rapidly (mean follow-up, 36.5 days after hospital admission and 17.8 days after discharge) fibrosis may begin in patients with SARS. Viral pneumonia usually resolves without any clinical and radiologic sequelae (10). There have been reports of influenza pneumonia causing pulmonary fibrosis (11) and adenovirus pneumonia causing bronchiolitis obliterans (12). SARS may more commonly cause severe parenchymal damage, with imaging changes appearing early. How many of these changes will resolve in the future is unknown, although it is unlikely that the areas of severe architectural distortion will resolve. This damage may be related to the proposed pathogenesis of lung damage by exaggerated cell-mediated host immune response elicited by a viral antigen (13). We believe the presence of pulmonary fibrosis would at least partially account for the patients’ symptoms.

Of the nine patients with both predischarge and follow-up thin-section CT scans, all showed improvement after a mean of 23 days, with residual ground-glass opacification and thickened septa in eight patients and a complete resolution in one patient. Although the number of patients is small, this observation suggests that initial lung parenchymal changes are of an inflammatory nature and improve after successful therapy. In patients with evidence of fibrosis at thin-section CT, the importance of concomitant presence of ground-glass opacification is not clear. If bronchiolitis obliterans organizing pneumonia, or BOOP, or forms of idiopathic interstitial pneumonia are used as a frame of reference (14,15), these changes may represent persistent inflammation that is potentially reversible at treatment. Currently, treatment with corticosteroids or other steroid-sparing immunomodulating agents (such as cyclophosphamide) has been used in BOOP (16,17). These are being tried in our institution for SARS-induced fibrosis. Hence, we believe the role of thin-section CT in follow-up of patients with SARS is to assess the extent of long-term lung parenchymal injury and/or fibrosis and to identify these potentially reversible components early so that appropriate treatment may be instituted to prevent further lung damage.

Comparison of the follow-up thin-section CT findings with clinical data has revealed differences between patients with thin-section CT evidence of fibrosis and those without in terms of age, sex distribution, intensive care unit admission rate, peak lactate dehydrogenase level, doses of pulsed intravenous methylprednisolone, and peak opacification on chest radiographs during treatment. There is a predominance of men and older patients with evidence of fibrosis. The higher intensive care unit admission rate and the peak extent of changes on chest radiographs during treatment in patients with evidence of fibrosis are most likely a reflection of the severity of disease experienced by these patients.

Patients with evidence of fibrosis at thin-section CT also had a higher requirement of pulsed intravenous methylprednisolone during treatment. Nearly all patients with a clinical diagnosis of SARS were treated initially with a combination of orally administered ribavirin and corticosteroid. In patients not responsive to initial treatment, high-dose corticosteroid in the form of pulsed therapy was administered. In our initial cohort, 107 of 138 patients had received pulsed steroid therapy (13). The need for pulsed steroid therapy may reflect the magnitude of the cytokine "storm" elicited by the viral antigen, which in fact may be the underlying pathogenesis of lung damage and subsequent development of fibrosis.

The peak lactate dehydrogenase level is higher in patients with evidence of fibrosis. Lactate dehydrogenase is an indicator of tissue destruction (presumably lung tissue in SARS) and has been shown to be a good independent predictor of worse clinical outcome (13). This parameter may be helpful in predicting which patients have a higher risk of developing pulmonary fibrosis after discharge so that early appropriate therapy and the follow-up protocol can be tailored accordingly. As this is a new entity, much is still to be learned about this potentially fatal, highly infectious disease.

There are limitations to our study. First, on the basis of the number of patients and the relatively short follow-up period, the full spectrum of disease appearance has likely not been demonstrated. These patients have not been followed up for a long period of time, and it is possible that many of the clinical and thin-section CT findings may still be reversible. Second, there is no histologic confirmation of fibrosis in any of the patients, although the signs on thin-section CT scans are convincing. Third, there is no comparison with clinical information, such as results from lung function tests and objective assessment of exercise tolerance. Fourth, no thin-section CT was performed in treated patients who were asymptomatic, and, thus, residual abnormalities in these patients cannot be excluded.

In conclusion, on thin-section CT scans, fibrosis was seen in 62% of the 24 symptomatic patients with SARS after treatment, with symptoms of exertional shortness of breath and reduced exercise tolerance. There is a difference between patients with evidence of fibrosis at thin-section CT and those without in terms of intensive care unit admission rate, peak lactate dehydrogenase level, number of doses of pulsed intravenous methylprednisolone, and peak opacification on chest radiographs during treatment, which suggests that fibrosis is more likely to develop in patients with more severe disease. However, we wish to clearly state that our findings are only preliminary, and larger studies with longer follow-up will be necessary to better determine the long-term outcome for patients with SARS.


    FOOTNOTES
 
Abbreviation: SARS = severe acute respiratory syndrome

Author contributions: Guarantor of integrity of entire study, A.T.A.; study concepts, A.T.A., G.E.A., K.T.W., J.J.Y.S.; study design, A.T.A., G.E.A., K.T.W.; literature research, G.E.A., K.T.W.; clinical studies, D.S.C.H., A.W., N.L., C.B.L., T.H.R., P.C., S.S.C.C., J.J.Y.S.; data acquisition, A.T.A., K.T.W., G.E.A., E.H.Y.Y.; data analysis/interpretation, K.T.W., G.E.A.; statistical analysis, K.T.W., G.E.A.; manuscript editing, K.T.W., G.E.A., A.T.A., J.J.Y.S., D.S.C.H.; manuscript preparation, definition of intellectual content, revision/review, and final version approval, K.T.W., G.E.A., A.T.A.


    REFERENCES
 TOP
 ABSTRACT
 INTRODUCTION
 MATERIALS AND METHODS
 RESULTS
 DISCUSSION
 REFERENCES
 

  1. Centers for Disease Control and Prevention. SARS coronavirus sequencing. Available at: www.cdc.gov/ncidod/sars/sequence.htm. Accessed April 14 2003.
  2. World Health Organization. Preliminary clinical description of severe acute respiratory syndrome. Available at: www.who.int/csr/sars/clinical/en/. Accessed March 21 2003.
  3. Centers for Disease Control and Prevention. Diagnosis/evaluation for SARS. Available at: www.cdc.gov/ncidod/sars/diagnosis.htm. Accessed April 7 2003.
  4. Wong KT, Antonio GE, Hui DS, et al. Severe acute respiratory syndrome: radiographic appearances and pattern of progression in 138 patients. Radiology. (in press).
  5. Wong KT, Antonio GE, Hui DSC, et al. Thin-section CT of severe acute respiratory syndrome: evaluation of 73 patients exposed to or with the disease. Radiology. (in press).
  6. Austin JHM, Muller NL, Friedman PJ, et al. Glossary of terms of CT of the lungs: recommendations of the Nomenclature Committee of the Fleischner Society. Radiology 1996; 200:327-331.[Free Full Text]
  7. Zerhouni EA, Naidich DP, Stitik FP, Khouri NF, Siegelman SS. Computed tomography of the pulmonary parenchyma. II. Interstitial disease. J Thorac Imaging 1985; 1:54-64.
  8. Westcott JL, Cole SR. Traction bronchiectasis in end-stage pulmonary fibrosis. Radiology 1986; 161:665-669.[Abstract/Free Full Text]
  9. Webb WR, Muller NL, Naidich DP. HRCT findings of lung disease In: High resolution CT of the lung. 2nd ed. Philadelphia, Pa: Lippincott-Raven, 1996; 41-108.
  10. Razer RS, Muller NL, Colman N, Pare PD. Viruses, mycoplasmas, chlamydiae, and rickettsiae In: Fraser and Pare’s diagnosis of diseases of the chest. 4th ed. Philadelphia, Pa: Saunders, 1999; 979-1032.
  11. Winterbauer RH, Ludwig WR, Hammar SP. Clinical course, management, and long-term sequelae of respiratory failure due to influenza viral pneumonia. Johns Hopkins Med J 1977; 141:148-155.[Medline]
  12. Becroft DM. Bronchiolitis obliterans, bronchiectasis, and other sequelae of adenovirus type 21 infection in young children. J Clin Pathol 1971; 24:72-82.[Abstract/Free Full Text]
  13. Lee N, Hui D, Wu A, et al. A major outbreak of severe acute respiratory syndrome in Hong Kong. N Engl J Med 2003; [serial online]:. April 14, 2003. Available at nejm.org/earlyrelease/sars.asp.
  14. Lee KS, Kullnig P, Hartman TE, Muller NL. Cryptogenic organizing pneumonia: CT findings in 43 patients. AJR Am J Roentgenol 1994; 162:543-546.[Abstract/Free Full Text]
  15. Kim EY, Lee KS, Chung MP, Kwon OJ, Kim TS, Hwang JH. Nonspecific interstitial pneumonia with fibrosis: serial high-resolution CT findings with functional correlation. AJR Am J Roentgenol 1999; 173:949-953.[Abstract/Free Full Text]
  16. King TE, Jr, Mortenson RL. Cryptogenic organizing pneumonitis: the North American experience. Chest 1992; 102(suppl 1):8S-13S.[Abstract/Free Full Text]
  17. Purcell IF, Bourke SJ, Marshall SM. Cyclophosphamide in severe steroid-resistant bronchiolitis obliterans organizing pneumonia. Respir Med 1997; 91:175-177.[CrossRef][Medline]



This article has been cited by other articles:


Home page
Am. J. Roentgenol.Home page
W. C. W. Chu, A. M. Li, A. W. H. Ng, H.-k. So, W. W. M. Lam, K. L. Lo, M.-c. A. Yeung, Y.-s. Yau, W.-k. Chiu, C.-w. Leung, et al.
Thin-Section CT 12 Months After the Diagnosis of Severe Acute Respiratory Syndrome in Pediatric Patients.
Am. J. Roentgenol., June 1, 2006; 186(6): 1707 - 1714.
[Abstract] [Full Text] [PDF]


Home page
ChestHome page
D. S. Hui, K. T. Wong, F. W. Ko, L. S. Tam, D. P. Chan, J. Woo, and J. J.Y. Sung
The 1-Year Impact of Severe Acute Respiratory Syndrome on Pulmonary Function, Exercise Capacity, and Quality of Life in a Cohort of Survivors
Chest, October 1, 2005; 128(4): 2247 - 2261.
[Abstract] [Full Text] [PDF]


Home page
ChestHome page
K.-C. Ong, A. W.-K. Ng, L. S.-U Lee, G. Kaw, S.-K. Kwek, M. K.-S. Leow, and A. Earnest
1-Year Pulmonary Function and Health Status in Survivors of Severe Acute Respiratory Syndrome
Chest, September 1, 2005; 128(3): 1393 - 1400.
[Abstract] [Full Text] [PDF]


Home page
RadiologyHome page
Y.-C. Chang, C.-J. Yu, S.-C. Chang, J. R. Galvin, H.-M. Liu, C.-H. Hsiao, P.-H. Kuo, K.-Y. Chen, T. J. Franks, K.-M. Huang, et al.
Pulmonary Sequelae in Convalescent Patients after Severe Acute Respiratory Syndrome: Evaluation with Thin-Section CT
Radiology, September 1, 2005; 236(3): 1067 - 1075.
[Abstract] [Full Text] [PDF]


Home page
ChestHome page
L. Xie, Y. Liu, Y. Xiao, Q. Tian, B. Fan, H. Zhao, and W. Chen
Follow-up Study on Pulmonary Function and Lung Radiographic Changes in Rehabilitating Severe Acute Respiratory Syndrome Patients After Discharge
Chest, June 1, 2005; 127(6): 2119 - 2124.
[Abstract] [Full Text] [PDF]


Home page
ThoraxHome page
D S Hui, G M Joynt, K T Wong, C D Gomersall, T S Li, G Antonio, F W Ko, M C Chan, D P Chan, M W Tong, et al.
Impact of severe acute respiratory syndrome (SARS) on pulmonary function, functional capacity and quality of life in a cohort of survivors
Thorax, May 1, 2005; 60(5): 401 - 409.
[Abstract] [Full Text] [PDF]


Home page
ThoraxHome page
C K Ng, J W M Chan, T L Kwan, T S To, Y H Chan, F Y Y Ng, and T Y W Mok
Six month radiological and physiological outcomes in severe acute respiratory syndrome (SARS) survivors
Thorax, October 1, 2004; 59(10): 889 - 891.
[Abstract] [Full Text] [PDF]


Home page
RadiologyHome page
S.-F. Ko, T.-Y. Lee, C.-C. Huang, Y.-F. Cheng, S.-H. Ng, Y.-L. Kuo, M.-C. Lin, J.-W. Liu, K. D. Yang, M.-C. Chen, et al.
Severe Acute Respiratory Syndrome: Prognostic Implications of Chest Radiographic Findings in 52 Patients
Radiology, October 1, 2004; 233(1): 173 - 181.
[Abstract] [Full Text] [PDF]


Home page
Int J EpidemiolHome page
U. D Parashar and L. J Anderson
Severe acute respiratory syndrome: review and lessons of the 2003 outbreak
Int. J. Epidemiol., August 1, 2004; 33(4): 628 - 634.
[Full Text] [PDF]


Home page
ChestHome page
H.-H. Hsu, C. Tzao, C.-P. Wu, W.-C. Chang, C.-L. Tsai, H.-J. Tung, and C.-Y. Chen
Correlation of High-Resolution CT, Symptoms, and Pulmonary Function in Patients During Recovery From Severe Acute Respiratory Syndrome
Chest, July 1, 2004; 126(1): 149 - 158.
[Abstract] [Full Text] [PDF]


Home page
PediatricsHome page
C.-w. Leung, Y.-w. Kwan, P.-w. Ko, S. S. Chiu, P.-y. Loung, N.-c. Fong, L.-p. Lee, Y.-w. Hui, H. K.W. Law, W. H.S. Wong, et al.
Severe Acute Respiratory Syndrome Among Children
Pediatrics, June 1, 2004; 113(6): e535 - e543.
[Abstract] [Full Text]


Home page
Am. J. Roentgenol.Home page
S.-C. Hsieh, W. P. Chan, J. C.-W. Chien, W.-S. Lee, M.-S. Yao, W.-M. Choi, C.-Y. Chen, and C. Yu
Radiographic Appearance and Clinical Outcome Correlates in 26 Patients with Severe Acute Respiratory Syndrome
Am. J. Roentgenol., May 1, 2004; 182(5): 1119 - 1122.
[Abstract] [Full Text] [PDF]


Home page
J. Clin. Pathol.Home page
G M-K Tse, K-F To, P K-S Chan, A W I Lo, K-C Ng, A Wu, N Lee, H-C Wong, S-M Mak, K-F Chan, et al.
Pulmonary pathological features in coronavirus associated severe acute respiratory syndrome (SARS)
J. Clin. Pathol., March 1, 2004; 57(3): 260 - 265.
[Abstract] [Full Text] [PDF]


Home page
RadiologyHome page
G. C. Ooi, P. L. Khong, N. L. Muller, W. C. Yiu, L. J. Zhou, J. C. M. Ho, B. Lam, S. Nicolaou, and K. W. T. Tsang
Severe Acute Respiratory Syndrome: Temporal Lung Changes at Thin-Section CT in 30 Patients
Radiology, March 1, 2004; 230(3): 836 - 844.
[Abstract] [Full Text] [PDF]


Home page
RadioGraphicsHome page
N. S. Paul, H. Roberts, J. Butany, T. Chung, W. Gold, S. Mehta, E. Konen, A. Rao, Y. Provost, H. H. Hong, et al.
Radiologic Pattern of Disease in Patients with Severe Acute Respiratory Syndrome: The Toronto Experience
RadioGraphics, March 1, 2004; 24(2): 553 - 563.
[Abstract] [Full Text] [PDF]


Home page
RadiologyHome page
G. M. Joynt, G. E. Antonio, P. Lam, K. T. Wong, T. Li, C. D. Gomersall, and A. T. Ahuja
Late-Stage Adult Respiratory Distress Syndrome Caused by Severe Acute Respiratory Syndrome: Abnormal Findings at Thin-Section CT
Radiology, February 1, 2004; 230(2): 339 - 346.
[Abstract] [Full Text] [PDF]


Home page
NEJMHome page
J. S.M. Peiris, K. Y. Yuen, A. D.M.E. Osterhaus, and K. Stohr
The Severe Acute Respiratory Syndrome
N. Engl. J. Med., December 18, 2003; 349(25): 2431 - 2441.
[Full Text] [PDF]


Home page
RadiologyHome page
C. G. C. Ooi, P. L. Khong, J. C. M. Ho, B. Lam, W. M. Wong, W. C. Yiu, P. C. Wong, C. F. Wong, K. N. Lai, and K. W. T. Tsang
Severe Acute Respiratory Syndrome: Radiographic Evaluation and Clinical Outcome Measures
Radiology, November 1, 2003; 229(2): 500 - 506.
[Abstract] [Full Text] [PDF]


Home page
RadiologyHome page
C. G. C. Ooi, P. L. Khong, B. Lam, J. C. M. Ho, W. C. Yiu, W.-M. Wong, T. Wang, P. L. Ho, P. C. Wong, R. H. Chan, et al.
Severe Acute Respiratory Syndrome: Relationship between Radiologic and Clinical Parameters
Radiology, November 1, 2003; 229(2): 492 - 499.
[Abstract] [Full Text] [PDF]


This Article
Right arrow Abstract Freely available
Right arrow Figures Only
Right arrow Full Text (PDF)
Right arrow All Versions of this Article:
2283030726v1
228/3/810    most recent
Right arrow Submit a response
Right arrow Alert me when this article is cited
Right arrow Alert me when eLetters are posted
Right arrow Alert me if a correction is posted
Right arrow Citation Map
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Antonio, G. E.
Right arrow Articles by Ahuja, A. T.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Antonio, G. E.
Right arrow Articles by Ahuja, A. T.


HOME HELP FEEDBACK SUBSCRIPTIONS ARCHIVE SEARCH TABLE OF CONTENTS
RADIOLOGY RADIOGRAPHICS RSNA JOURNALS ONLINE