Mitochondria are multifunctional organelles that play a central role in energy metabolism. Owing to the life-essential functions of these organelles, mitochondrial content, quality and dynamics are tightly controlled. Across the species, highly conserved ATP-dependent proteases prevent malfunction of mitochondria through versatile activities. This study focuses on a molecular function of the plant mitochondrial inner membrane-embedded AAA protease (denoted i-AAA) FTSH4, providing its first bona fide substrate. Here, we report that the abundance of the Tim17-2 protein, an essential component of the TIM17:23 translocase (Tim17-2 together with Tim50 and Tim23), is directly controlled by the proteolytic activity of FTSH4. Plants that are lacking functional FTSH4 protease are characterized by significantly enhanced capacity of preprotein import through the TIM17:23-dependent pathway. Taken together, with the observation that FTSH4 prevents accumulation of Tim17-2, our data point towards the role of this i-AAA protease in the regulation of mitochondrial biogenesis in plants.

Mitochondria are essential, double membrane-bound organelles that are the main sites of ATP production in eukaryotic cells. Continuous degradation and biogenesis processes enable the maintenance of healthy mitochondrial populations and allow the mitochondrial proteome to adapt in response to the fluctuating cellular requirements (Nunnari and Suomalainen, 2012; Harbauer et al., 2014; Palikaras and Tavernarakis, 2014). The vast majority of mitochondrial proteins are nuclear encoded and synthetized as preproteins in the cytosol that are transported into destined sub-mitochondrial localization through the action of sophisticated, membrane-embedded protein translocation machineries (Wasilewski et al., 2016; Schulz et al., 2015).

Mitochondrial integrity considerably depends on balancing the levels of different subunits of protein complexes. This is achieved through various mechanisms, including selective removal of excess subunits by ATP-dependent proteolysis (König et al., 2016; Szczepanowska et al., 2016). Within the mitochondria, diverse ATP-dependent proteases with versatile activities are engaged in the maintenance of mitochondrial protein homeostasis (proteostasis) and function (Voos, 2013; Quirós et al., 2015; Janska et al., 2010).

The mitochondrial inner membrane-embedded AAA protease (denoted i-AAA) forms a homo-oligomeric ATP-dependent proteolytic complex that is embedded in the inner mitochondrial membrane (IMM) with the catalytic sites exposed to the intermembrane space (IMS) (Gerdes et al., 2012). In humans, a homozygous mutation in the gene encoding i-AAA protease (YME1L) was found to be associated with the development of mitochondriopathy with optic nerve atrophy (Hartmann et al., 2016). Upon loss or depletion of i-AAA protease, both in yeast and in mammals, pleiotropic phenotypes are observed. Yeast and mammalian i-AAA proteases display diverse activities, including proteolytic processing of mitophagy and fusion factors, selective elimination of misfolded and unassembled subunits, and control of the turnover of specific regulatory proteins that altogether influence a wide spectrum of processes occurring at the mitochondria (Thorsness et al., 1993; Weber et al., 1996; Nebauer et al., 2007; Ruan et al., 2013; Stiburek et al., 2012; Anand et al., 2014; Wang et al., 2013; Potting et al., 2010; Nakai et al., 1995).

Plant mitochondria contain two i-AAA proteases, FTSH4 and FTSH11 (Urantowka et al., 2005). Arabidopsis thaliana devoid of FTSH4 displays severe developmental and morphological changes under temperature-stress conditions (Dolzblasz et al., 2016; Smakowska et al., 2016). These alterations correlate with oxidative stress, imbalance in phospholipid metabolism, perturbation in respiratory chain complexes activity and aberrant mitochondrial morphology (Smakowska et al., 2016). Similarly, loss of FTSH4 affects development and leaf morphology at the late stage of rosette growth when subjected to a short-day photoperiod at optimum temperature (Gibala et al., 2009; Kolodziejczak et al., 2007). In contrast to yeast or mammalian systems, the endogenous substrates of i-AAA protease have not yet been described in plants and consequently, the molecular mechanisms detailing how FTSH4 maintains mitochondrial function remain elusive.

Here, we demonstrate that plant i-AAA protease FTSH4 is required for the turnover of the essential mitochondrial inner membrane preprotein translocase Tim17-2. The lack of functional FTSH4 protease is associated with an increased abundance of Tim17-2 and an enhanced import capacity of model substrates for the TIM17:23 translocase; Tim17-2 together with Tim50 and Tim23 form the core of the TIM17:23 complex (Wang et al. 2012). This study provides the first identification of the physiological substrate of plant i-AAA protease and links FTSH4 protease and mitochondrial preprotein import machinery.

Mitochondria devoid of FTSH4 accumulate Tim17-2

To understand the role of FTSH4 protease in the maintenance of mitochondrial function, we searched for primary changes caused by the loss of this i-AAA protease. Consequently, to diminish the risk of secondary effects, we sought to identify mitochondrial proteins that accumulate in ftsh4 mutants cultivated under optimal growth conditions, where no significant alterations in mitochondrial activity were observed (22°C with a long-day photoperiod, cycles of 8 h dark and 16 h light) (Smakowska et al., 2016). Interestingly, we found a substantial increase in the steady-state levels of Tim17-2 in mitochondria isolated from both ftsh4-1 and ftsh4-2 lines (Fig. 1; Fig. S1). Tim17-2 is a highly conserved, essential component of the inner mitochondrial membrane protein translocase – the TIM17:23 complex – that transports the majority of mitochondrial proteome (Wasilewski et al., 2016; Schulz et al., 2015). As evident from studies performed in yeast, Tim17 plays multiple roles within the TIM17:23 translocase. It regulates pore structure and voltage gating of the Tim23 channel, and is required for the promotion of the inner-membrane insertion of preproteins and direct interaction of the TIM17:23 core with the presequence translocase-associated motor (Martinez-Caballero et al., 2007; Chacińska et al., 2005). Consequently, the precise level and stoichiometry of Tim17 may be important for the optimal functioning of TIM17:23. A. thaliana contains three isoforms of Tim17, of which only Tim17-2 is essential and constitutively expressed (Murcha et al., 2014). We found that steady-state levels of other TIM17:23 subunits as well as levels of components of protein translocases from the outer mitochondrial membrane, Sam50 and Tom40, and of the intermembrane space-localized small Tim chaperone, Tim9, were unaffected upon FTSH4 loss (Fig. 1). These results show that the increase in Tim17-2 levels in ftsh4 mutants is specific and not caused by a general upregulation of mitochondrial preprotein import machineries. To further address correlation between the FTSH4 protease and Tim17-2 levels we generated a ftsh4-1 complementation line (ftsh4-1 FTSH4), in which FTSH4 was expressed under the constitutive CaMV 35S promotor (Fig. S2). Overproduction of FTSH4 rescued the morphological phenotype of ftsh4-1 line (Fig. S3) and led to a decrease in Tim17-2 steady-state levels (Fig. S2).

Fig. 1.

Tim17-2 protein levels are elevated in ftsh4 mutant. Representative immunoblots of mitochondrial fractions prepared from wild type and ftsh4-1 cells (upper panel). Quantification of steady-state levels of mitochondrial proteins in ftsh4 mutant relatively to wild type (set to 1). Bars represent mean±s.d. from n≥3 (lower panel). IM, inner membrane; OM, outer membrane; IMS, intermembrane space.

Fig. 1.

Tim17-2 protein levels are elevated in ftsh4 mutant. Representative immunoblots of mitochondrial fractions prepared from wild type and ftsh4-1 cells (upper panel). Quantification of steady-state levels of mitochondrial proteins in ftsh4 mutant relatively to wild type (set to 1). Bars represent mean±s.d. from n≥3 (lower panel). IM, inner membrane; OM, outer membrane; IMS, intermembrane space.

Next, we questioned whether Tim17-2 present in excessive amounts in ftsh4 mutants is correctly integrated into the mitochondrial membrane. To address this, we isolated mitochondria from wild-type and mutant plants and performed alkaline carbonate extraction that allows for distinguishing between integral membrane proteins (pellet) and soluble or peripheral membrane proteins (supernatant). Both in wild-type and ftsh4 mitochondria, Tim17-2 was exclusively found in pellet fractions after sodium carbonate treatment, indicating integration into the inner membrane (Fig. 2A). To confirm specificity of the assay, mtHsp70 (also known as mtHsc70-1, a soluble protein of mitochondrial matrix) and Slp1 (mitochondrial inner membrane protein that is partially extracted with sodium carbonate; Gehl et al., 2014) were used as controls.

Fig. 2.

A substantial portion of Tim17-2 is present as low molecular mass sub-complexes in mitochondria lacking FTSH4 protease. (A) Western blot analysis of mitochondrial fractions from wild type and ftsh4 mutants subjected to alkaline carbonate extraction. Equal amounts from the whole mitochondria (Total), supernatant fractions (soluble and peripheral membrane proteins) and pellet fractions (membrane-integrated proteins) were resolved with SDS-PAGE, immobilized on PVDF membrane and analyzed with specific antibodies. (B) Mitochondria isolated from wild-type and ftsh4-1 plants were lysed with digitonin and subjected to BN-PAGE followed by SDS-PAGE in the second dimension. TIM17:23 complexes were probed with anti-Tim17-2 and -Tim50 antibodies.

Fig. 2.

A substantial portion of Tim17-2 is present as low molecular mass sub-complexes in mitochondria lacking FTSH4 protease. (A) Western blot analysis of mitochondrial fractions from wild type and ftsh4 mutants subjected to alkaline carbonate extraction. Equal amounts from the whole mitochondria (Total), supernatant fractions (soluble and peripheral membrane proteins) and pellet fractions (membrane-integrated proteins) were resolved with SDS-PAGE, immobilized on PVDF membrane and analyzed with specific antibodies. (B) Mitochondria isolated from wild-type and ftsh4-1 plants were lysed with digitonin and subjected to BN-PAGE followed by SDS-PAGE in the second dimension. TIM17:23 complexes were probed with anti-Tim17-2 and -Tim50 antibodies.

We also addressed Tim17-2 distribution within mitochondrial membrane protein complexes by Blue native (BN)-PAGE followed by a second-dimension electrophoresis under denaturing conditions (2D-BN/SDS-PAGE) (Fig. 2B). In wild-type mitochondria, Tim17-2 mainly co-migrated with Tim50 as does the TIM17:23 translocase (Wang et al., 2012). A small portion of Tim17-2 in a low molecular mass sub-complex was detected. In contrast, a substantial fraction of Tim17-2 was present as a low molecular mass sub-complex in ftsh4 mutant. Furthermore, the ratio of TIM17:23 complexes in ftsh4 mutants was noticeably altered. Taken together, we conclude that FTSH4 controls the abundance of Tim17-2 in the mitochondrial membrane and that lack of this protease exerts an impact on the architecture of TIM17:23 translocase.

Proteolytic activity of FTSH4 is required to prevent accumulation of Tim17-2

Specific accumulation of Tim17-2 in ftsh4 mutant mitochondria strongly suggests that FTSH4 proteolytic activity is required for the turnover of this essential protein import component. In order to address whether Tim17-2 represents a proteolytic substrate of FTSH4, we generated a mutant line expressing a proteolytically inactive variant of FTSH4 [FTSH4(H486Y)] in the ftsh4-1 background. The overproduction of FTSH4(H486Y) was confirmed by immunoblot analysis (Fig. 3A). Expression of the proteolytically inactive variant of FTSH4 neither restored the morphological phenotype of ftsh4-1 line (Fig. S3) nor downregulated levels of Tim17-2 (Fig. 3A), demonstrating the importance of the proteolytic function of this i-AAA protease in vivo. To obtain further evidence for the role of FTSH4 proteolytic activity in the regulation of Tim17-2 levels, we analyzed turnover of Tim17-2 in isolated mitochondria. We observed a time-dependent decrease in Tim17-2 amounts in wild-type mitochondria, while the levels of this protein remained stable in mitochondria isolated from plants expressing proteolytically inactive FTSH4 (Fig. 3B). Moreover, we found that Tim17-2 specifically co-precipitates with FTSH4(H486Y) (Fig. 3C,D). We conclude from these studies that Tim17-2 represents a bona fide substrate of the FTSH4 protease.

Fig. 3.

Proteolytic activity of FTSH4 is required to prevent Tim17-2 accumulation. (A) Representative immunoblot of mitochondrial fractions prepared from wild-type, ftsh4-1 and ftsh4-1 FTSH4(H486Y) plants (left panel). The density of the Tim17-2 band is shown underneath the blot (Qunatif.). Quantification of steady-state levels of Tim17-2 and SHMT in ftsh4-1 FTSH4(H486Y) mutants relative to wild type (set to 1). Bars represent mean±s.d. from n>3 (right panel). (B) Immunoblot of purified mitochondria obtained from ftsh4-1 FTSH4(H486Y) and wild-type plants. Mitochondria were incubated for 0 to 4 h at 35°C in a buffer supplemented with ATP (upper panel). Quantification of Tim17-2 and Slp1 stability in ftsh4-1 FTSH4(H486Y) mutant and wild-type mitochondria. Results represent mean±s.d. from n=3 (lower panel). (C) Immunoblot showing co-immunoprecipitation of Tim17-2 with FLAG-tagged proteolytically inactive FTSH4. Mitochondria from ftsh4-1 FTSH4(H486Y) and ftsh4-1 control were lysed with digitonin and immunoprecipitated with anti-FLAG affinity matrix. The precipitated proteins were then immunoblotted with antibodies against the indicated proteins. IN, input (5%); FT, flow-through (5%); W, wash; E, eluate. (D) Immunoblot showing co-immunoprecipitation of Tim17-2 with FLAG-tagged proteolytically inactive FTSH4. Mitochondria from ftsh4-1 FTSH4(H486Y) were lysed with digitonin and incubated with or without antibodies raised against Tim17-2 and Protein-A–Sepharose. The precipitated proteins were then immunoblotted with antibodies against the indicated proteins. W, wash; E, eluate.

Fig. 3.

Proteolytic activity of FTSH4 is required to prevent Tim17-2 accumulation. (A) Representative immunoblot of mitochondrial fractions prepared from wild-type, ftsh4-1 and ftsh4-1 FTSH4(H486Y) plants (left panel). The density of the Tim17-2 band is shown underneath the blot (Qunatif.). Quantification of steady-state levels of Tim17-2 and SHMT in ftsh4-1 FTSH4(H486Y) mutants relative to wild type (set to 1). Bars represent mean±s.d. from n>3 (right panel). (B) Immunoblot of purified mitochondria obtained from ftsh4-1 FTSH4(H486Y) and wild-type plants. Mitochondria were incubated for 0 to 4 h at 35°C in a buffer supplemented with ATP (upper panel). Quantification of Tim17-2 and Slp1 stability in ftsh4-1 FTSH4(H486Y) mutant and wild-type mitochondria. Results represent mean±s.d. from n=3 (lower panel). (C) Immunoblot showing co-immunoprecipitation of Tim17-2 with FLAG-tagged proteolytically inactive FTSH4. Mitochondria from ftsh4-1 FTSH4(H486Y) and ftsh4-1 control were lysed with digitonin and immunoprecipitated with anti-FLAG affinity matrix. The precipitated proteins were then immunoblotted with antibodies against the indicated proteins. IN, input (5%); FT, flow-through (5%); W, wash; E, eluate. (D) Immunoblot showing co-immunoprecipitation of Tim17-2 with FLAG-tagged proteolytically inactive FTSH4. Mitochondria from ftsh4-1 FTSH4(H486Y) were lysed with digitonin and incubated with or without antibodies raised against Tim17-2 and Protein-A–Sepharose. The precipitated proteins were then immunoblotted with antibodies against the indicated proteins. W, wash; E, eluate.

Lack of FTSH4 protease is associated with enhanced capacity for the import of model substrates for the TIM17:23 translocase

An imbalance in levels of different complex subunits might lead to changes in the activity of the whole protein complex (König et al., 2016). Since our results suggest that FTSH4 protease controls Tim17-2 levels and by this modulates the architecture of TIM17:23 translocase, we questioned how the loss of FTSH4 influences mitochondrial protein import. To establish the role of FTSH4 in this process, we analyzed the capacity for in vitro uptake of the alternative oxidase (AOX, Genbank X68702), a precursor known to be imported via TIM17:23 translocase (Murcha et al., 2005), into ftsh4-1 mutant mitochondria (Fig. 4A). We found that mitochondria devoid of FTSH4 protease display a substantially increased rate of import for the radiolabeled AOX precursor. In contrast, in vitro uptake of the adenine nucleotide transporter (ANT) (Murcha et al., 2005), a precursor known to be imported via the TIM22 translocase complex, showed no difference in the rate of import in mitochondria isolated from ftsh4-1 compared to in wild type (Fig. 4B). Furthermore, we found that overexpression of FTSH4 protease in a ftsh4-1 background led not only to a reduction in Tim17-2 levels (Fig. S2), but also to a decrease in the rate of AOX import (Fig. S4). This is in line with previous findings, where the mammalian homolog of FTSH4, YME1L, was shown to downregulate the activity of TIM17:23 translocase by mediating the proteolysis of Tim17A isoform (Rainbolt et al., 2013). Increased import capacity through TIM17:23 translocase in ftsh4-1 mutant suggests that a low molecular mass Tim17-2 complex, which is present in elevated amounts in mutant mitochondria, could represent a functional translocase involved in import of preproteins. On the other hand, the TIM17:23 translocase is a very dynamic complex in which its subunits alter their conformations and undergo association and dissociation to facilitate preprotein import (Schulz et al., 2015). Therefore, we cannot rule out the possibility that the presence of excessive amounts of Tim17-2 induces changes in the architecture and dynamics of TIM17:23 translocase that have a stimulatory impact on import of at least a specific set of preproteins. Noteworthy, Tim17-2 contains a C-terminal extension that protrudes into the outer mitochondrial membrane providing a physical link between the inner and outer mitochondrial membranes (Murcha et al., 2005). Thus, accumulation of Tim17-2 in the ftsh4 mutant could enhance the tethering between mitochondrial membranes facilitating preprotein import through the TIM17:23 complex (Donzeau et al., 2000). However, the molecular mechanism detailing how the Tim17-2 levels control the rate of preprotein import into the plant mitochondria remains to be elucidated.

Fig. 4.

Lack of FTSH4 protease promotes mitochondrial protein import through the TIM17:23-dependent pathway. (A) Radiolabeled preprotein AOX was incubated at 26°C with isolated wild-type and ftsh4-1 mitochondria for the indicated times. After protease K treatment, the samples were resolved by SDS-PAGE and analyzed by digital autoradiography. The amount of the processed AOX in wild-type mitochondria after the longest import time was set to 100% (control). Results represent mean±s.e.m. from n>3. (B) Radiolabeled carrier preprotein ANT was incubated at 26°C with isolated wild-type and ftsh4-1 mitochondria for the indicated times. After protease K treatment, the samples were resolved by SDS-PAGE and analyzed by digital autoradiograpy. The amount of the processed ANT in wild-type mitochondria after the longest import time was set to 100% (control). Results represent mean±s.e.m. from n=3. p, precursor; m, mature.

Fig. 4.

Lack of FTSH4 protease promotes mitochondrial protein import through the TIM17:23-dependent pathway. (A) Radiolabeled preprotein AOX was incubated at 26°C with isolated wild-type and ftsh4-1 mitochondria for the indicated times. After protease K treatment, the samples were resolved by SDS-PAGE and analyzed by digital autoradiography. The amount of the processed AOX in wild-type mitochondria after the longest import time was set to 100% (control). Results represent mean±s.e.m. from n>3. (B) Radiolabeled carrier preprotein ANT was incubated at 26°C with isolated wild-type and ftsh4-1 mitochondria for the indicated times. After protease K treatment, the samples were resolved by SDS-PAGE and analyzed by digital autoradiograpy. The amount of the processed ANT in wild-type mitochondria after the longest import time was set to 100% (control). Results represent mean±s.e.m. from n=3. p, precursor; m, mature.

Conclusions

In conclusion, our report suggests that the FTSH4 protease has a novel role of in the regulation of preprotein influx into the mitochondria by regulating the abundance of Tim17-2 levels. These findings provide new insights into the significance of ATP-dependent proteolysis in the maintenance of mitochondrial proteostasis in plants.

Reagents

A detailed list of reagents used in this study is provided in Table S1.

Plant material and growth conditions

Arabidopsis thaliana lines used were: ecotype Col-0 wild type, T-DNA insertion lines ftsh4-1 (SALK_035107/TAIR) and ftsh4-2 (GABI_103H09/TAIR) (Gibala et al., 2009), the ftsh4-1 FTSH4 complementation line and ftsh4-1 FTSH4(H486Y) mutant line, and were grown on 0.5× MS medium supplemented with 3% (w/v) sucrose in chambers in a 16 h light and 8 h dark (long-day photoperiod) at 22°C for 2 weeks with a light intensity of 150 μmol m−2 s−1. To test the morphological phenotype of A. thaliana lines, plants were grown in soil in a climate-controlled chamber in a 8 h light and 16 h dark (short-day photoperiod) at 22°C for 10 weeks.

Generation of ftsh4-1 FTSH4 complementation line

FTSH4 cDNA sequence was amplified using primers FTSH4.FLAGfor and FTSH4.FLAGrev (Table S2) and cloned into pENTR™/D-TOPO (Invitrogen). The resulting plasmid, FTSH4.FLAG pENTR, was used in a gateway LR recombination reaction with destination vector pGWB514, and a final construct, FTSH4.FLAG pGWB514, was obtained. The ftsh4-1 FTSH4 complementation line was made by the Agrobacterium tumefaciens-mediated transformation (Bernhardt et al., 2012).

Generation of the ftsh4-1 FTSH4(H486Y) mutant line

In order to abolish the proteolytic activity of FTSH4 protease, a highly conserved histidine at the position 486 (a Zn2+-binding site, in the HExxH motif) was mutated into a tyrosine residue (Westphal et al., 2012). The mutation was introduced on FTSH4.FLAG pENTR plasmid using a QuikChange Lightening site-directed mutagenesis kit (Agilent Technologies) and primers Mut_prot_H_FP and Mut_prot_H_RP (Table S2) resulting in a FTSH4(HIS).FLAG pENTR plasmid. Next, the Gateway LR recombinant reaction was performed with a FTSH4(HIS).FLAG pENTR plasmid and destination vector pGWB514. This resulted in the construction of a final plasmid, FTSH4(H486Y).FLAG pGWB514, bearing FTSH4(H486Y).FLAG under the constitutive CaMV 35S promotor. ftsh4-1 FTSH4(H486Y) line was made by the Agrobacterium tumefaciens-mediated transformation (Bernhardt et al., 2012).

Immunoblot analysis

Selected proteins were probed with the specific antibodies indicated in Table S3. Proteins were visualized with enhanced chemiluminescence (Mruk and Cheng, 2011) using a G-BOX ChemiXR5 (Syngene, UK) and the results were quantified with ImageJ software.

Isolation of mitochondria from Arabidopsis thaliana

Isolation of mitochondria from 14-day-old seedlings was performed accordingly to a well-established procedure (Murcha and Whelan, 2015).

2D-BN/SDS-PAGE analysis

Mitochondria were solubilized in digitonin-containing buffer and 2D-BN/SDS-PAGE analysis was performed as described previously (Wittig et al., 2006; Wang et al., 2012).

In vitro uptake of mitochondrial 35S-labeled precursor proteins

Radiolabeling of model mitochondrial preproteins (AOX; Genbank X68702) and ANT (Genbank X57556) with [35S] methionine and their import into mitochondria was performed as described previously (Duncan et al., 2015). Radiolabeled proteins were visualized by digital autoradiography (PharosFX Plus Systems, Bio-Rad) and analyzed with Quantity One software (Bio-Rad).

Carbonate extraction assay

To discriminate between membrane-integrated and soluble mitochondrial proteins, alkaline carbonate extraction assay was performed as described previously (Fujiki et al., 1982).

Analysis of the kinetics of protein degradation in isolated mitochondria

The kinetics of protein degradation in isolated mitochondria was analyzed by incubation of mitochondria in assay buffer (300 mM sucrose, 10 mM MOPS-KOH, 80 mM KCl, 5 mM MgCl2, 8 mM ATP, 12.5 µM ZnSO4 pH 7.2) at 35°, followed by SDS-PAGE and immunoblotting.

Co-immunoprecipitation

In order to perform immunoprecipitation of FLAG-tagged FTSH4(H486Y) protein, mitochondria were resuspended in digitonin solubilization buffer (1% digitonin, 20 mM Tris-HCl, 0.1 mM EDTA, 100 mM NaCl, 10% glycerol, pH 7.7) at 1 mg/ml. PMSF and EDTA-free protease inhibitor cocktail were added and samples were incubated for 30 min at 4°C with mixing. After a clarifying centrifugation (18,000 g for 15 min), solubilized material was loaded on anti-FLAG affinity matrix and incubated under constant rotation for 1.5 h at 4°C. After excessive washing steps proteins were eluted and subjected to SDS-PAGE and immunoblot analysis. Immunoprecipitation assays using antibodies raised against Tim17-2 and Protein-A–Sepharose resin were performed as described previously (Wang et al., 2012).

We thank Tsuyoshi Nakagawa (Department of Molecular and Functional Genomics, Center for Integrated Research in Science, Shimane University, Japan) for vector pGWB514 and Lee Sweetlove (Department of Plant Sciences, University of Oxford, UK) for Slp1 antibodies.

Author contributions

M.O. and H.J. designed the study. M.O. and K.P. performed the experiments. M.W.M. provided the materials. All authors analyzed the data. M.O. wrote the manuscript with contribution from other authors.

Funding

This work was supported by a grant from the National Science Centre (Narodowe Centrum Nauki, NCN) (2015/16/S/NZ3/00364) awarded to M.O. M.W.M. is supported by an Australian Research Council Future Fellowship (FT13100112).

Anand
,
R.
,
Wai
,
T.
,
Baker
,
M. J.
,
Kladt
,
N.
,
Schauss
,
A. C.
,
Rugarli
,
E.
and
Langer
,
T.
(
2014
).
The i-AAA protease YME1L and OMA1 cleave OPA1 to balance mitochondrial fusion and fission
.
J. Cell. Biol.
204
,
919
-
929
.
Bernhardt
,
K.
,
Vigelius
,
S. K.
,
Linka
,
N.
and
Andreas
,
P. M.
(
2012
).
Agrobacterium-mediated Arabidopsis thaliana transformation: an overview of T-DNA binary vectors, floral dip and screening for homozygous lines
.
Endocytobiosis Cell Res.
22
,
19
-
28
.
Carrie
,
C.
,
Kühn
,
K.
,
Murcha
,
M. W.
,
Duncan
,
O.
,
Small
,
I. D.
,
O'Toole
,
N.
and
Whelan
,
J.
(
2009
).
Approaches to defining dual-targeted proteins in Arabidopsis
.
Plant J.
57
,
1128
-
1139
.
Chacińska
,
A.
,
Lind
,
M.
,
Frazier
,
A. E.
,
Dudek
,
J.
,
Meisinger
,
C.
,
Geissler
,
A.
,
Sickmann
,
A.
,
Meyer
,
H. E.
,
Truscott
,
K. N.
,
Guiard
,
B.
, et al. 
(
2005
).
Mitochondrial presequence translocase: switching between TOM tethering and motor recruitment involves Tim21 and Tim17
.
Cell
120
,
817
-
822
.
Dolzblasz
,
A.
,
Smakowska
,
E.
,
Gola
,
E. M.
,
Sokolowska
,
K.
,
Kicia
,
M.
and
Jańska
,
H.
(
2016
).
The mitochondrial protease AtFTSH4 safeguards Arabidopsis shoot apical meristem function
.
Sci. Rep.
6
,
28315
.
Donzeau
,
M.
,
Káldi
,
K.
,
Adam
,
A.
,
Paschen
,
S.
,
Wanner
,
G.
,
Guiard
,
B.
,
Bauer
,
M. F.
,
Neupert
,
W.
and
Brunner
,
M.
(
2000
).
Tim23 links the inner and outer mitochondrial membranes
.
Cell
101
,
401
-
412
.
Duncan
,
O.
,
Taylor
,
N. L.
,
Carrie
,
C.
,
Eubel
,
H.
,
Kubiszewski-Jakubiak
,
S.
,
Zhang
,
B.
,
Narsai
,
R.
,
Millar
,
A. H.
and
Whelan
,
J.
(
2011
).
Multiple Lines of Evidence Localize Signaling, Morphology, and Lipid Biosynthesis Machinery to the Mitochondrial Outer Membrane of Arabidopsis
.
Plant Physiol.
157
,
1093
-
1113
.
Duncan
,
O.
,
Carrie
,
C.
,
Wang
,
Y.
and
Murcha
,
M. W.
(
2015
).
In vitro and in vivo protein uptake studies in plant mitochondria
.
Methods Mol. Biol.
1305
,
61
-
81
.
Escobar Galvis
,
M. L.
,
Marttila
,
S.
,
Håkansson
,
G.
,
Forsberg
,
J.
and
Knorpp
,
C.
(
2001
).
Heat stress response in pea involves interaction of mitochondrial nucleoside diphosphate kinase with a novel 86-kilodalton protein
.
Plant Physiol.
126
,
69
-
77
.
Fujiki
,
Y.
,
Hubbard
,
A. L.
,
Fowler
,
S.
and
Lazarow
,
P. B.
(
1982
).
Isolation of intracellular membranes by means of sodium carbonate treatment: application to endoplasmic reticulum
.
J. Cell Biol.
93
,
97
-
102
.
Gehl
,
B.
,
Lee
,
C. P.
,
Bota
,
P.
,
Blatt
,
M. R.
and
Sweetlove
,
L. J.
(
2014
).
An Arabidopsis stomatin-like protein affects mitochondrial respiratory supercomplex organization
.
Plant Physiol.
164
,
1389
-
1400
.
Gerdes
,
F.
,
Tatsuta
,
T.
and
Langer
,
T.
(
2012
).
Mitochondrial AAA proteases--towards a molecular understanding of membrane-bound proteolytic machines
.
Biochim. Biophys. Acta.
1823
,
49
-
55
.
Gibala
,
M.
,
Kicia
,
M.
,
Sakamoto
,
W.
,
Gola
,
E. M.
,
Kubrakiewicz
,
J.
,
Smakowska
,
E.
and
Jańska
,
H.
(
2009
).
The lack of mitochondrial AtFtsH4 protease alters Arabidopsis leaf morphology at the late stage of rosette development under short-day photoperiod
.
Plant J.
59
,
685
-
699
.
Harbauer
,
A. B.
,
Zahedi
,
R. P.
,
Sickmann
,
A.
,
Pfanner
,
N.
and
Meisinger
,
C.
(
2014
).
The protein import machinery of mitochondria-a regulatory hub in metabolism, stress, and disease
.
Cell Metab.
19
,
357
-
372
.
Hartmann
,
B.
,
Wai
,
T.
,
Hu
,
H.
,
MacVicar
,
T.
,
Musante
,
L.
,
Fischer-Zirnsak
,
B.
,
Stenzel
,
W.
,
Gräf
,
R.
,
van den Heuvel
,
L.
,
Ropers
,
H. H.
, et al. 
(
2016
).
Homozygous YME1L1 mutation causes mitochondriopathy with optic atrophy and mitochondrial network fragmentation
.
Elife
5
,
e16078
.
Janska
,
H.
,
Piechota
,
J.
and
Kwaśniak
,
M.
(
2010
).
ATP-dependent proteases in biogenesis and maintenance of plant mitochondria
.
Biochim. Biophys. Acta.
1797
,
1071
-
1075
.
Kolodziejczak
,
M.
,
Gibala
,
M.
,
Urantówka
,
A.
and
Jańska
,
H.
(
2007
).
The significance of Arabidopsis AAA proteases for activity and assembly/stability of mitochondrial OXPHOS complexes
.
Physiol. Plant
129
,
135
-
142
.
König
,
T.
,
Tröder
,
S. E.
,
Bakka
,
K.
,
Korwitz
,
A.
,
Richter-Dennerlein
,
R.
,
Lampe
,
P. A.
,
Patron
,
M.
,
Mühlmeister
,
M.
,
Guerrero-Castillo
,
S.
,
Brandt
,
U.
, et al. 
(
2016
).
The m-AAA Protease Associated with Neurodegeneration Limits MCU Activity in Mitochondria
.
Mol. Cell
64
,
148
-
162
.
Martinez-Caballero
,
S.
,
Grigoriev
,
S. M.
,
Herrmann
,
J. M.
,
Campo
,
M. L.
and
Kinnally
,
K. W.
(
2007
).
Tim17p regulates the twin pore structure and voltage gating of the mitochondrial protein import complex TIM23
.
J. Biol. Chem.
282
,
3584
-
3593
.
Mruk
,
D. D.
and
Cheng
,
C. Y.
(
2011
).
Enhanced chemiluminescence (ECL) for routine immunoblotting: An inexpensive alternative to commercially available kits
.
Spermatogenesis
1
,
121
-
122
.
Murcha
,
M. W.
and
Whelan
,
J.
(
2015
).
Isolation of intact mitochondria from the model plant species Arabidopsis thaliana and Oryza sativa
.
Methods Mol. Biol.
1305
,
1
-
12
.
Murcha
,
M. W.
,
Elhafez
,
D.
,
Millar
,
A. H.
and
Whelan
,
J.
(
2005
).
The C-terminal region of TIM17 links the outer and inner mitochondrial membranes in Arabidopsis and is essential for protein import
.
J. Biol. Chem.
280
,
16476
-
16483
.
Murcha
,
M.
,
Kmieć
,
B.
,
Kubiszewski-Jakubiak
,
S.
,
Teixeira
,
P. F.
,
Glaser
,
E.
and
Whelan
,
J.
(
2014
).
Protein import into plant mitochondria: signals, machinery, processing, and regulation
.
J. Exp. Bot.
65
,
6301
-
6335
.
Nakai
,
T.
,
Yasuhara
,
T.
,
Fujiki
,
Y.
and
Ohashi
,
A.
(
1995
).
Multiple genes, including a member of the AAA family, are essential for degradation of unassembled subunit 2 of cytochrome c oxidase in yeast mitochondria
.
Mol. Cell Biol.
15
,
4441
-
4452
.
Nebauer
,
R.
,
Schuiki
,
I.
,
Kulterer
,
B.
,
Trajanoski
,
Z.
and
Daum
,
G.
(
2007
).
The phosphatidylethanolamine level of yeast mitochondria is affected by the mitochondrial components Oxa1p and Yme1p
.
FEBS J.
274
,
6180
-
6190
.
Nunnari
,
J.
and
Suomalainen
,
A.
(
2012
).
Mitochondria: in sickness and in health
.
Cell
148
,
1145
-
1159
.
Palikaras
,
K.
and
Tavernarakis
,
N.
(
2014
).
Mitochondrial homeostasis: the interplay between mitophagy and mitochondrial biogenesis
.
Exp. Gerontol.
56
,
182
-
188
.
Potting
,
C.
,
Wilmes
,
C.
,
Engmann
,
T.
,
Osman
,
C.
and
Langer
,
T.
(
2010
).
Regulation of mitochondrial phospholipids by Ups/PRELI-like proteins depends on proteolysis and Mdm35
.
EMBO J.
29
,
2888
-
2898
.
Quirós
,
P. M.
,
Langer
,
T.
and
López-Otín
,
C.
(
2015
).
New roles for mitochondrial proteases in health, ageing and disease
.
Nat. Rev. Mol. Cell Biol.
16
,
345
-
359
.
Rainbolt
,
T. K.
,
Atanassova
,
N.
,
Genereux
,
J. C.
and
Wiseman
,
R. L.
(
2013
).
Stress-regulated translational attenuation adapts mitochondrial protein import through Tim17A degradation
.
Cell Metab.
18
,
908
-
919
.
Ruan
,
Y.
,
Li
,
H.
,
Zhang
,
K.
,
Jian
,
F.
,
Tang
,
J.
and
Song
,
Z.
(
2013
).
Loss of Yme1L perturbates mitochondrial dynamics
.
Cell Death Dis.
4
,
e896
.
Schulz
,
C.
,
Schendzielorz
,
A.
and
Rehling
,
P.
(
2015
).
Unlocking the presequence import pathway
.
Trends Cell Biol.
25
,
265
-
275
.
Smakowska
,
E.
,
Skibior-Blaszczyk
,
R.
,
Czarna
,
M.
,
Kolodziejczak
,
M.
,
Kwaśniak-Owczarek
,
M.
,
Parys
,
K.
,
Funk
,
C.
and
Jańska
,
H.
(
2016
).
Lack of FTSH4 Protease Affects Protein Carbonylation, Mitochondrial Morphology, and Phospholipid Content in Mitochondria of Arabidopsis: New Insights into a Complex Interplay
.
Plant Physiol.
171
,
2516
-
2535
.
Stiburek
,
L.
,
Cesnekova
,
J.
,
Kostkova
,
O.
,
Fornuskova
,
D.
,
Vinsova
,
K.
,
Wenchich
,
L.
,
Houstek
,
J.
and
Zeman
,
J.
(
2012
).
YME1L controls the accumulation of respiratory chain subunits and is required for apoptotic resistance, cristae morphogenesis, and cell proliferation
.
Mol. Biol. Cell
23
,
1010
-
1023
.
Szczepanowska
,
K.
,
Maiti
,
P.
,
Kukat
,
A.
,
Hofsetz
,
E.
,
Nolte
,
H.
,
Senft
,
K.
,
Becker
,
C.
,
Ruzzenente
,
B.
,
Hornig-Do
,
H.
,
Wibom
,
R.
, et al. 
(
2016
).
CLPP coordinates mitoribosomal assembly through the regulation of ERAL1 levels
.
EMBO J.
35
,
2566
-
2583
.
Thorsness
,
P. E.
,
White
,
K. H.
and
Fox
,
T. D.
(
1993
).
Inactivation of YME1, a member of the ftsH-SEC18-PAS1-CDC48 family of putative ATPase-encoding genes, causes increased escape of DNA from mitochondria in Saccharomyces cerevisiae
.
Mol. Cell Biol.
13
,
5418
-
5426
.
Urantowka
,
A.
,
Knorpp
,
C.
,
Olczak
,
T.
,
Kolodziejczak
,
M.
and
Jańska
,
H.
(
2005
).
Plant mitochondria contain at least two i -AAA-like complexes
.
Plant Mol. Biol.
59
,
239
-
252
.
Voos
,
W.
(
2013
).
Chaperone-protease networks in mitochondrial protein homeostasis
.
Biochim. Biophys. Acta.
1833
,
388
-
399
.
Wang
,
Y.
,
Carrie
,
C.
,
Giraud
,
E.
,
Elhafez
,
D.
,
Narsai
,
R.
,
Duncan
,
O.
,
Whelan
,
J.
and
Murcha
,
M. W.
(
2012
).
Dual location of the mitochondrial preprotein transporters B14.7 and Tim23-2 in complex I and the TIM17:23 complex in Arabidopsis links mitochondrial activity and biogenesis
.
Plant Cell
24
,
2675
-
2695
.
Wang
,
K.
,
Jin
,
M.
,
Liu
,
X.
and
Klionsky
,
D. J.
(
2013
).
Proteolytic processing of Atg32 by the mitochondrial i -AAA protease Yme1 regulates mitophagy
.
Autophagy
9
,
1828
-
1836
.
Wasilewski
,
M.
,
Chojnacka
,
K.
and
Chacińska
,
A.
(
2016
).
Protein trafficking at the crossroads to mitochondria
.
Biochim. Biophys. Acta.
1864
,
125
-
137
.
Weber
,
E. R.
,
Hanekamp
,
T.
and
Thorsness
,
P. E.
(
1996
).
Biochemical and functional analysis of the YME1 gene product, an ATP and zinc-dependent mitochondrial protease from S. cerevisiae
.
Mol. Biol. Cell.
7
,
307
-
317
.
Westphal
,
K.
,
Langklotz
,
S.
,
Thomanek
,
N.
and
Narberhaus
,
F.
(
2012
).
A trapping approach reveals novel substrates and physiological functions of the essential protease FtsH in Escherichia coli
.
J. Biol. Chem.
287
,
42962
-
42971
.
Wittig
,
I.
,
Braun
,
H.-P.
and
Schägger
,
H.
(
2006
).
Blue native PAGE
.
Nat. Protoc.
1
,
418
-
428
.

Competing interests

The authors declare no competing or financial interests.

Supplementary information