Literature DB >> 29242495

The Evolution of Corneal Transplantation.

Tobias Röck1, Johanna Landenberger1, Matthias Bramkamp2, Karl Ulrich Bartz-Schmidt1, Daniel Röck1.   

Abstract

BACKGROUND The aim of this study was to investigate the evolution of surgical methods in and leading indications for corneal transplantation from 2005 to 2016. MATERIAL AND METHODS Data from the corneal graft waiting list and from all keratoplasties carried out between 2005 and 2016 at the University Eye Hospital Tübingen were retrospectively evaluated. RESULTS A total of 1259 keratoplasties were performed between 2005 and 2016 at the University Eye Hospital Tübingen. The most common surgical indications for corneal transplantation were Fuchs endothelial corneal dystrophy (45.5%) and keratoconus (14.2%). The mean rate of corneal transplantations almost doubled from 71 keratoplasties per year in the first 6-year period to 139 keratoplasties per year in the second 6-year period (P=0.005). The number of penetrating keratoplasties remained similar. The number of Descemet membrane endothelial keratoplasties (DMEK) increased significantly from 2008 to 2016 (P<0.0001). One DMEK procedure was performed in 2008 (representing 1.4% of all transplantations), while 75 DMEK procedures were performed in 2016 (representing 60.5% of all transplantations) (P<0.0001). DMEK became the favored surgical method for endothelial disorders, exceeding penetrating keratoplasty in 2013. CONCLUSIONS Our study shows evolutionary changes in preferred corneal transplantation techniques and leading indications for keratoplasty from 2005 to 2016. Since its introduction a decade ago, DMEK is currently the golden standard in the management of corneal endothelial dysfunction.

Entities:  

Mesh:

Year:  2017        PMID: 29242495      PMCID: PMC6248302          DOI: 10.12659/aot.905498

Source DB:  PubMed          Journal:  Ann Transplant        ISSN: 1425-9524            Impact factor:   1.530


Background

Eduard Zirm performed the first successful corneal transplantation in 1905 [1]. It is still the most frequent type of transplantation performed in humans [2]. After Zirm’s milestone in 1905, only a few improvements were made over the next 100 years, involving microscopes, sutures, antibiotics, and corticosteroids, but there was little change in the surgical techniques used. However, the first decade of the 21st century saw an explosion in more selective endothelial replacement techniques [3]. In recent years, the improvements in corneal transplantation techniques have revolutionized corneal transplant surgery. The breakthrough occurred in 2006, when Melles et al. successfully introduced a new technique for transplanting isolated Descemet’s membrane (DM) through a self-sealing tunnel incision, which they referred to as DM endothelial keratoplasty (DMEK) [3]. In the years before DMEK was first described, different new lamellar keratoplasty techniques have been reported, including Descemet stripping endothelial keratoplasty (DSEK) [4] and Descemet stripping automated endothelial keratoplasty (DSAEK) [5]. These procedures, especially DMEK [3,6], provide various benefits over penetrating keratoplasty (PK), based on its minimal invasiveness, low rate of rejection, and minimal refractive shift, with very quick visual improvement [7]. In 2006, Darlington et al. performed a review of corneal transplantation, analyzing data from 1980 to 2004 [8]. They found that more than 95% of corneal tissues were used for PK, and the major indications were pseudophakic bullous keratopathy, keratoconus, Fuchs endothelial dystrophy (Fuchs’ dystrophy), and repeat grafts. Confronted with the new possibilities of lamellar keratoplasty and inspired by the investigation of Darlington et al. [8], we decided to investigate the changes in surgical methods, the statistics on keratoplasties, and leading indications at the University Eye Hospital Tübingen from 2005 to 2016.

Material and Methods

The medical history of all keratoplasties performed between January 2005 and December 2016 at the University Eye Hospital Tübingen were retrospectively analyzed. The indications for transplantation were categorized according to keratoconus, Fuchs’ dystrophy, bullous keratopathy, trauma, rejection, and others. The number of keratoplasties was determined annually. The yearly numbers of performed keratoplasties were evaluated on the basis of the surgical method [PK, DSAEK, DMEK, Deep anterior lamellar keratoplasty (DALK), and Boston keratoprosthesis]. Figure 1 shows a schematic overview displaying: (A) a virgin cornea and (B–F) different keratoplasty procedures: (B) PK, (C) Boston keratoprosthesis, (D) DALK, (E) DSAEK, and (F) DMEK.
Figure 1

Schematic overview displaying: (A) a virgin cornea and (B–F) different keratoplasty procedures: (B) PK, (C) Boston keratoprosthesis, (D) DALK, (E) DSAEK, and (F) DMEK.

The indications for corneal transplantation were obtained from the waiting list at the turn of the respective year. This study was approved by the Institutional Review Board of the University of Tübingen and adhered to the tenets of the Declaration of Helsinki.

Statistical analysis

Statistical analysis of the data was conducted using the Statistical Packages for the Social Sciences (SPSS 18.0). Quantitative variables are expressed as mean ± standard deviation (SD). P<0.05 was considered to be statistically significant. Descriptive statistics and graphic representations of the trend of transplantation techniques and indications were prepared. Yearly rates of corneal transplantation were compared using the t test.

Results

Between 2005 and 2016, 1259 corneal transplantations were performed at the University Eye Hospital Tübingen. These included 725 (57.6%) PKs and 534 (42.4%) lamellar keratoplasties (LKs). The mean rate of keratoplasties almost doubled from 71 corneal transplantations per year in the first 6-year period to 139 corneal transplantations per year in the second 6-year period (P=0.005).

Surgical technique

Between 2005 and 2016, the annual numbers of PK remained similar. Between 2005 and 2007, keratoplasty was only carried out in the form of PKs. The first endothelial keratoplasty (EK) was carried out in 2008 using the DSAEK method. Exclusively, 20 DSAEK procedures were carried out from 2008 to 2009. DMEK quickly replaced DSAEK at the University Eye Hospital Tübingen and remained the favored EK technique until now. One DMEK procedure was carried out in 2008 (representing 1.4% of all keratoplasties), while 75 DMEKs were carried out in 2016 (representing 60.5% of all keratoplasties) (P<0.0001). DMEK became the favored surgical method for endothelial disorders, exceeding penetrating keratoplasty in 2013. Boston keratoprosthesis, DALK, and DSAEK were performed in small numbers during the 12-year period, representing 0.3%, 1.8%, and 1.6% of the total keratoplasties, respectively. Figure 2 shows the distribution of corneal transplantations by technique (PK, DSAEK, DMEK, DALK, and Boston keratoprosthesis) of the 1259 performed keratoplasties from 2005 to 2016.
Figure 2

This figure shows the distribution of corneal transplantations by technique (PK, DSAEK, DMEK, DALK, and Boston keratoprosthesis) of the 1259 keratoplasties performed from 2005 to 2016. Between 2005 and 2007, corneal transplantation was exclusively performed in the form of PK. The first endothelial keratoplasty (EK) was performed in 2008 using the DSAEK technique. DMEK quickly replaced DSAEK at the University Eye Hospital Tübingen and became and remains the preferred surgical technique for endothelial diseases, surpassing penetrating keratoplasty in 2013. DMEK increased significantly from 2008 to 2016 (P<0.0001).

Indications for corneal transplantation

The indications for corneal transplantation were obtained from the waiting list, which increased from 36 patients in 2005 to 246 patients in 2016. During the study period, the leading surgical indications for keratoplasties were Fuchs’ dystrophy (45.5%) and keratoconus (14.2%). Other indications for corneal transplantation were bullous keratopathy (10.4%), trauma (4.3%), rejection (8.9%), and others such as bacterial, fungal, viral or Acanthamoeba keratitis, and penetrating corneal ulcers due to trophic disease or chemical and thermal burns of the cornea (16.8%). In 2005, keratoconus was the most common indication (41.7%) for corneal transplantation, but in 2016 it was only the third most common (6.5%). Since 2013, the rate of Fuchs’ dystrophy as a surgical indication for corneal transplantation increased significantly (P<0.0001). Fuchs’ dystrophy was the leading surgical indication for keratoplasty from 2010 to 2016. In 2005, Fuchs’ dystrophy was only the fourth most common indication (8.3%) for corneal transplantation, but in 2016 it was the most common (69.5%). Figure 3 shows the distribution of the corneal graft waiting list with indications (Fuchs’ dystrophy, keratoconus, bullous keratopathy, trauma, rejection, and others) for corneal transplantation at the turn of the year from 2005 to 2016 in 936 cases.
Figure 3

This figure shows the distribution of the corneal graft waiting list with indications (Fuchs’ dystrophy, keratoconus, Bullous Keratopathy, trauma, rejection, and others) for corneal transplantation at the turn of the year from 2005 to 2016 in 936 cases. The leading surgical indications for corneal transplantation were Fuchs’ dystrophy (45.5%) and keratoconus (14.2%) throughout the study period. Since 2013, the rate of Fuchs’ dystrophy as a surgical indication for corneal transplantation increased significantly (P<0.0001).

Discussion

Our study shows the changing trends in corneal transplantation methods and leading indications for corneal transplantation at the University Eye Hospital in Tübingen from 2005 to 2016. The most common surgical indications for corneal transplantation were Fuchs’ dystrophy and keratoconus. These leading common surgical indications were almost equal to the main indications for corneal transplantation reported in previous studies [9-13]. The sequence of indications changes by country and depends on environmental causes and the surgeon. Our study documented that the rate of keratoplasties almost doubled from 71 corneal transplantations per year in the first 6-year period to 139 corneal transplantations per year in the second 6-year period. The reasons for the increase are demographic changes, changes in surgical procedures (especially endothelial procedures), and the increase of corneal donors, at the University Hospital in Tübingen. Between 2005 and 2007, keratoplasty was only carried out in the form of PK. However, EK has evolved dramatically into an alternative to PK in cases of compromised endothelial cell layer without irreversible stromal damage. Consequently, EK has replaced PK in the treatment of endothelial dysfunctions to a great extent all over the world. The first EK was performed in our center in 2008 using the DSAEK method. Only 20 DSAEK procedures were carried out from 2008 to 2009. DMEK quickly replaced DSAEK at the University Eye Hospital Tübingen and remains the favored EK technique to manage endothelial cell disorders. DMEK is well-established and was first reported in 2006 by Melles [3,6], providing various advantages over PK based on its minimal invasiveness, lower intraoperative risks, and minimal refractive shift with very fast visual recovery [10,14,15]. One DMEK procedure was carried out in 2008 (representing 1.4% of all keratoplasties), while 75 DMEK procedures were performed in 2016 (representing 60.5% of all transplantations) (P<0.0001). DMEK surgery is very complicated, presenting the challenges of stripping the donor graft and then manipulating it. Implementing and processing the stripped 15-μm-thin Descemet membrane is a huge challenge. The stripped Descemet membrane rolls in automatically, showing the endothelial layer on the outside. After injection into the anterior chamber, the main challenges are rolling it out, identifying which side shows the endothelial layer, and positioning it centrally without folds. All these difficult procedures have to be carried out without touching the Descemet membrane. Improvements in microsurgical techniques like the EK procedure and the enormous success of the DMEK have allowed many more patients with endothelial disorders to undergo keratoplasties earlier than before. Corneas that had been considered to be too early for PK are now qualified for DMEK. This is in contrast to 2006, when Afshari et al. reported that almost no eyes with Fuchs’ dystrophy and a visual acuity more excellent than 0.5 qualified for a keratoplasty [16]. However, the surgical center needs a specialist surgeon who feels comfortable with the DMEK procedure, which requires a sophisticated technique. There is the possibility that surgeons are afraid to change, for example from DSAEK to DMEK, when graft reserve is lacking, due to the higher hazard of graft preparation failure and consequent graft waste when starting to use this novel method. Fortunately, this has not been the case in our hospital due to our own in-house eye bank and excellent surgeons. One more obstacle and main intraoperative complication, especially for novice DMEK surgeons, is difficulty in graft unfolding. Maier et al. and our study group reported in 2015 that an important factor for the outcome of the DMEK surgery for patients with endothelial disorders is not waiting too long for surgery [17,18]. Our study group showed a relationship between the outcome of the DMEK surgery with disease severity [18]. With the advances in EK, the patients receive and also require the corneal transplantation surgery earlier, if corneal tissue is available. Better visual acuity also corresponds to a higher quality of life. For these reasons, pressure on eye banks to procure more suitable corneal grafts has been growing enormously in recent years. Although DALK was already described in 2002 [19], it was carried out in our hospital in small numbers during the 12-year study period, representing 1.8% of the total corneal grafts. The moderate introduction of DALK is probably due to its longer surgical time with the big bubble technique, a higher technical challenge, the introduction of collagen crosslinking in patients with progressive keratoconus [20], a lower number of patients with the indication for DALK, and, consequently, a slower and more difficult learning curve for the surgeon. Corneal graft scarcity is a common dilemma over most of the world. As already mentioned above, it consists of a growing need for corneal grafts as a result of demographic changes on the one hand, and the growing number of surgical procedures, especially endothelial ones, on the other hand [6]. In Germany, recent years have been challenging regarding corneal donors after publicity about various transplantation scandals [21,22]. The public has suffered a massive lack of confidence in the transplantation system. The loss of trust has influenced the donation rate significantly [22]. Furthermore, the acquisition of donor corneas is based on sufficient staff levels of the eye bank team [23], increasing public education of people about corneal donation [24], and a working system of connections between intensive care units and the responsible eye bank colleagues [25]. Furthermore, the knowledge and awareness of corneal donation through education is important to meet the corneal scarcity and gain more corneal donors to help our visually impaired patients in sufficient numbers with corneal transplantations. For these reasons, researchers are concerned and try to combat the scarcity of corneal tissue. Yoeruek et Bartz-Schmidt described a novel approach to decrease the shortage of corneal tissue. A solution for the future could be to split the stripped Descemet membrane lamellae (split-DMEK) for 2 recipients and use the denuded anterior part for DALK of a third recipient [26]. This technique could help 3 recipients to have restored vision.

Conclusions

Our study showed evolutionary changes in preferred corneal transplantation techniques and leading indications for keratoplasty from 2005 to 2016. Since its introduction a decade ago, DMEK is currently the golden standard in the management of corneal endothelial dysfunction.
  25 in total

1.  The CORTES study: corneal transplant indications and graft survival in an Italian cohort of patients.

Authors:  Adriano Fasolo; Anna Chiara Frigo; Elisabetta Böhm; Claudio Genisi; Paolo Rama; Leopoldo Spadea; Barbara Mastropirro; Michela Fornea; Diego Ponzin; Francesco Grigoletto
Journal:  Cornea       Date:  2006-06       Impact factor: 2.651

2.  Posterior lamellar keratoplasty: DLEK to DSEK to DMEK.

Authors:  Gerrit R J Melles
Journal:  Cornea       Date:  2006-09       Impact factor: 2.651

3.  Collagen crosslinking with riboflavin and ultraviolet-A light in keratoconus: long-term results.

Authors:  Frederik Raiskup-Wolf; Anne Hoyer; Eberhard Spoerl; Lutz E Pillunat
Journal:  J Cataract Refract Surg       Date:  2008-05       Impact factor: 3.351

4.  Current approaches to combat the shortage of corneal tissues: split-DMEK and double-split keratoplasty.

Authors:  Efdal Yoeruek; K U Bartz Schmidt
Journal:  Cornea       Date:  2015-03       Impact factor: 2.651

5.  Deep lamellar endothelial keratoplasty visual acuity, astigmatism, and endothelial survival in a large prospective series.

Authors:  Mark A Terry; Paula J Ousley
Journal:  Ophthalmology       Date:  2005-09       Impact factor: 12.079

6.  Descemet's membrane endothelial keratoplasty: prospective study of 1-year visual outcomes, graft survival, and endothelial cell loss.

Authors:  Frederico P Guerra; Arundhati Anshu; Marianne O Price; Arthur W Giebel; Francis W Price
Journal:  Ophthalmology       Date:  2011-08-27       Impact factor: 12.079

7.  Descemet membrane endothelial keratoplasty (DMEK).

Authors:  Gerrit R J Melles; T San Ong; Bob Ververs; Jacqueline van der Wees
Journal:  Cornea       Date:  2006-09       Impact factor: 2.651

8.  Big-bubble technique to bare Descemet's membrane in anterior lamellar keratoplasty.

Authors:  Mohammed Anwar; Klaus D Teichmann
Journal:  J Cataract Refract Surg       Date:  2002-03       Impact factor: 3.351

9.  Causes that influence the detachment rate after Descemet membrane endothelial keratoplasty.

Authors:  T Röck; M Bramkamp; K U Bartz-Schmidt; D Röck; E Yörük
Journal:  Graefes Arch Clin Exp Ophthalmol       Date:  2015-07-28       Impact factor: 3.117

10.  Descemet's stripping with endothelial keratoplasty in 50 eyes: a refractive neutral corneal transplant.

Authors:  Francis W Price; Marianne O Price
Journal:  J Refract Surg       Date:  2005 Jul-Aug       Impact factor: 3.573

View more
  7 in total

1.  Corneal fibrosis abrogation by a localized AAV-mediated inhibitor of differentiation 3 (Id3) gene therapy in rabbit eyes in vivo.

Authors:  Suneel Gupta; Michael K Fink; Duraisamy Kempuraj; Nishant R Sinha; Lynn M Martin; Landon M Keele; Prashant R Sinha; Elizabeth A Giuliano; Nathan P Hesemann; Sudhanshu P Raikwar; Shyam S Chaurasia; Rajiv R Mohan
Journal:  Mol Ther       Date:  2022-07-02       Impact factor: 12.910

Review 2.  Corneal transplantation in the modern era.

Authors:  Rashmi Singh; Noopur Gupta; M Vanathi; Radhika Tandon
Journal:  Indian J Med Res       Date:  2019-07       Impact factor: 2.375

3.  Exploring the Key Genes and Pathways in the Formation of Corneal Scar Using Bioinformatics Analysis.

Authors:  Binfeng Liu; Ang Li; Hongbo Wang; Jialin Wang; Gongwei Zhai; Haohao Ma; Shiqing Feng; Liyun Liu; Yanzheng Gao
Journal:  Biomed Res Int       Date:  2020-01-18       Impact factor: 3.411

4.  Changing Indications for Penetrating Keratoplasty in Bahrain in a Tertiary Referral Centre.

Authors:  Nada Al-Yousuf; Ebtisam Al Alawi; Abdulhameed Mahmood; Amani Alzayani; Hajer Al Sawad; Hasan Alsetri; Jalal Al-Mousawi; Khatoon Ali; Maryam Al Khayat; Reem Naser
Journal:  Clin Ophthalmol       Date:  2021-04-13

5.  Evolution of corneal transplantation techniques and their indications in a French corneal transplant unit in 2000-2020.

Authors:  Vianney Malleron; Florian Bloch; Yinka Zevering; Jean-Charles Vermion; Axelle Semler-Collery; Christophe Goetz; Jean-Marc Perone
Journal:  PLoS One       Date:  2022-04-29       Impact factor: 3.240

Review 6.  Variable Responses to Corneal Grafts: Insights from Immunology and Systems Biology.

Authors:  Antonio Di Zazzo; Sang-Mok Lee; Jaemyoung Sung; Matteo Niutta; Marco Coassin; Alireza Mashaghi; Takenori Inomata
Journal:  J Clin Med       Date:  2020-02-21       Impact factor: 4.241

7.  Effects of femtosecond laser-assisted trephination on donor tissue in liquid interface as compared to applanated interface.

Authors:  Ruth Donner; Gerald Schmidinger
Journal:  Acta Ophthalmol       Date:  2021-07-26       Impact factor: 3.988

  7 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.